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首页> 外文期刊>Journal of Beijing Institute of Technology >Image-Moment Based Affine Invariant Watermarking Scheme Utilizing Neural Networks
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Image-Moment Based Affine Invariant Watermarking Scheme Utilizing Neural Networks

机译:利用神经网络的基于图像矩的仿射不变水印方案

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摘要

A new image watermarking scheme is proposed to resist rotation, scaling and translation (RST) attacks. Six combined low order image moments are utilized to represent image information on rotation, scaling and translation. Affine transform parameters are registered by feedforward neural networks. Watermark is adaptively embedded in discrete wavelet transform (DWT) domain while watermark extraction is carried out without original image after attacked watermarked image has been synchronized by making inverse transform through parameters learned by neural networks. Experimental results show that the proposed scheme can effectively register affine transform parameters, embed watermark more robustly and resist geometric attacks as well as JPEG2000 compression.
机译:提出了一种新的图像水印方案,以抵抗旋转,缩放和平移(RST)攻击。利用六个组合的低阶图像矩来表示有关旋转,缩放和平移的图像信息。仿射变换参数由前馈神经网络注册。水印被自适应地嵌入到离散小波变换(DWT)域中,而在攻击后的水印图像已经通过神经网络学习的参数进行了逆变换之后,在没有原始图像的情况下进行水印提取。实验结果表明,该方案可以有效地注册仿射变换参数,更可靠地嵌入水印,并能抵抗几何攻击以及JPEG2000压缩。

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