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Discrimination of Computer Generated and Photographic Images Based on CQWT Quaternion Markov Features

机译:基于CQWT四元数马尔可夫特征的计算机图像识别。

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摘要

In this paper, an effective method based on the color quaternion wavelet transform (CQWT) for image forensics is proposed. Compared to discrete wavelet transform (DWT), the CQWT provides more information, such as the quaternion's magnitude and phase measures, to discriminate between computer generated (CG) and photographic (PG) images. Meanwhile, we extend the classic Markov features into the quaternion domain to develop the quaternion Markov statistical features for color images. Experimental results show that the proposed scheme can achieve the classification rate of 92.70%, which is 6.89% higher than the classic Markov features.
机译:提出了一种基于彩色四元数小波变换(CQWT)的图像取证有效方法。与离散小波变换(DWT)相比,CQWT提供了更多信息,例如四元数的幅度和相位测量,以区分计算机生成(CG)图像和摄影(PG)图像。同时,我们将经典的马尔可夫特征扩展到四元数域,以开发彩色图像的四元数马尔可夫统计特征。实验结果表明,该方案可以达到92.70%的分类率,比经典的马尔可夫特征高6.89%。

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