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Quaternion-Based Image Hashing for Adaptive Tampering Localization

机译:基于四元数的图像哈希用于自适应篡改定位

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Image-hashing-based tampering detection methods have been widely studied with continuous advancements. However, most of existing models are designed for a specific tampering. In this paper, we propose a novel quaternion-based image hashing to detect almost all types of tampering, including color changing, copy move, splicing, and so on. First, the quaternion Fourier-Mellin transform is used to calculate the geometric hash to eliminate the influence of geometric distortions. Then, a new quaternion image construction method, which combines advantages of both color and structural features, is proposed to implement the quaternion Fourier transform to calculate the image feature hash to locate the tampered regions. The objective is to provide a reasonably short image hashing with good performance, i.e., being perceptually robust against various content-preserving attacks while capable of detecting and locating almost all types of tampering. Furthermore, an adaptive tampering localization algorithm is proposed based on clustering analysis to improve the detection accuracy. The experimental results show that the proposed tampering detection model outperforms the existing state-of-the-art models and is very robust against various content-preserving attacks.
机译:基于图像哈希的篡改检测方法已经得到了持续不断的研究。但是,大多数现有模型都是为特定篡改而设计的。在本文中,我们提出了一种新颖的基于四元数的图像哈希来检测几乎所有类型的篡改,包括颜色更改,复制移动,拼接等。首先,使用四元数Fourier-Mellin变换来计算几何哈希,以消除几何失真的影响。然后,提出了一种新的结合颜色和结构特征优势的四元数图像构造方法,以实现四元数傅里叶变换来计算图像特征哈希值来定位被篡改区域。目的是提供具有良好性能的合理的短图像散列,即在感知上抵抗各种内容保留攻击,同时能够检测和定位几乎所有类型的篡改。此外,提出了一种基于聚类分析的自适应篡改定位算法,以提高检测精度。实验结果表明,所提出的篡改检测模型优于现有的最新模型,并且对于各种内容保留攻击非常健壮。

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