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首页> 外文期刊>Circuits and Systems for Video Technology, IEEE Transactions on >Toward Optimal Prediction Error Expansion-Based Reversible Image Watermarking
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Toward Optimal Prediction Error Expansion-Based Reversible Image Watermarking

机译:朝向最佳预测误差扩展的可逆图像水印

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摘要

Reversible image watermarking is a technique that allows the cover image to remain unmodified after watermark extraction. Prediction error expansion-based schemes are currently the most efficient and widely used class of reversible image watermarking techniques. In this paper, first, we prove that the bounded capacity distortion minimization problem for prediction error expansion-based reversible watermarking schemes is NP-hard, and the corresponding decision version of the problem is NP-complete. Then, we prove that the dual problem of bounded distortion capacity maximization problem for prediction error expansion-based reversible watermarking schemes is NP-hard, and the corresponding decision problem is NP-complete. Furthermore, taking advantage of the integer linear programming formulations of the optimization problems, we find the optimal performance metric values for a given image, using concepts from the optimal linear prediction theory. Our technique allows the calculation of these performance metric limit without assuming any particular prediction scheme. The experimental results for several common benchmark images are consistent with the calculated performance limits validate our approach.
机译:可逆图像水印是一种技术,允许覆盖图像在水印提取后保持未改性。基于预测误差扩展的方案目前是最有效且广泛使用的可逆图像水印技术。在本文中,首先,我们证明了基于预测误差扩展的可逆水印方案的界限容量失真最小化问题是NP-Hard,问题的相应决策版本是NP-Complete。然后,我们证明了基于预测误差扩展的可逆水印方案的有界失真容量最大化问题的双问题是NP - 硬,并且相应的决策问题是NP-Complete。此外,利用优化问题的整数线性编程配方,我们发现给定图像的最佳性能度量值,使用来自最佳线性预测理论的概念。我们的技术允许在不假设任何特定预测方案的情况下计算这些性能度量极限。几个常见的基准图像的实验结果与计算的性能限制一致,验证我们的方法。

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