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Image-Moment Based Affine Invariant Watermarking Scheme Utilizing Neural Networks
作者姓名:吴健珍  谢剑英  杨煜普
作者单位:Department of Automation Shanghai Jiaotong University Shanghai 200030 China,Department of Automation Shanghai Jiaotong University Shanghai 200030 China,Department of Automation Shanghai Jiaotong University Shanghai 200030 China
基金项目:theNational“863”ProgramProject(2001AA422420-02)
摘    要:Watermarking,as a technique for copyright pro-tection,has drawn significant attention from manyresearchers and there has been intensive research inthis areainrecent years.Robustness of watermarkingstill remains one of the key issues for practical appli-cations.Aserious problemconstrainingsome practicalexplorations of watermarking technologyis the insuf-ficient robustness of existing watermarking algorithmsagainst geometric distortionsuch as rotation,scaling,and translation(RST),etc1].Designi…

文章编号:1004-0579(2006)01-0071-05
收稿时间:2004-01-07

Image-Moment Based Affine Invariant Watermarking Scheme Utilizing Neural Networks
WU Jian-zhen,XIE Jian-ying and YANG Yu-pu.Image-Moment Based Affine Invariant Watermarking Scheme Utilizing Neural Networks[J].Journal of Beijing Institute of Technology,2006,15(1):71-75.
Authors:WU Jian-zhen  XIE Jian-ying and YANG Yu-pu
Affiliation:Department of Automation, Shanghai Jiaotong University, Shanghai 200030, China;Department of Automation, Shanghai Jiaotong University, Shanghai 200030, China;Department of Automation, Shanghai Jiaotong University, Shanghai 200030, China
Abstract: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.
Keywords:digital watermark  affine transform  geometric attacks  image moment  neural networks
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