基于内容认证和智能优化的鲁棒图像水印算法

Yi-Lin Bei, Xiaorong Zhu, Qian Zhang, Sai Qiao
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引用次数: 0

摘要

针对现有数字水印算法的不足,提出了一种基于内容认证和机器学习的彩色图像双水印算法。该算法首先结合离散小波变换(DWT)和离散余弦变换(DCT),通过奇异值分解(SVD)调制嵌入水印;其次,利用支持向量机(SVM)的学习和分类特性,通过训练大量数据得到水印检测模型,最后自动提取鲁棒水印;为了实现内容认证和篡改定位,该算法同时嵌入脆弱水印,并利用小波变换高频系数之间的关系对水印进行嵌入和提取。通过仿真结果和数据分析,所提出的双水印算法不仅实现了智能水印提取过程,而且能够在保持较强鲁棒性的同时准确定位恶意篡改。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Robust Image Watermarking Algorithm Based on Content Authentication and Intelligent Optimization
Aiming at some shortcomings of current digital watermarking algorithms, a color image double watermarking algorithm based on content authentication and machine learning is proposed in this paper. Firstly, the algorithm combines discrete wavelet transform (DWT) and discrete cosine transform (DCT), and embeds the watermark through singular value decomposition (SVD) modulation. Secondly, using the learning and classification characteristics of Support Vector Machine (SVM), the watermark detection model is obtained through training a large number of data, and finally the robust watermark is extracted automatically. In order to realize content authentication and tamper location, the algorithm embeds a fragile watermark at the same time, and uses the relationship between the high-frequency coefficients of wavelet transform to embed and extract the watermark. Through the simulation results and data analysis, the proposed double watermarking algorithm not only realizes the intelligent watermark extraction process, but also can accurately locate malicious tampering while maintaining strong robustness.
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