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FEATURE REGIONS BASED ON GRAPH OPTIMIZATION FOR ROBUST REVERSIBLE WATERMARKING

机译:基于Graph优化的特征区域,用于鲁棒可逆水印

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Recently, robust reversible watermarking (RRW) has gained increasing interests and researchers are seeking more stable image features to design watermark embedding and extraction models for local image regions protection. Previous studies show that it is promising to construct local feature regions (FRs) for RRW to handle this problem. However, selecting non-overlapping FRs and evaluating FRs stability for RRW are still challenging. To target this issue, we first construct an undirected weighted graph based on the FRs distribution pattern and then formulate the non-overlapping FRs selection as a weighted maximal clique problem and develop a maximum gain-cost ratio algorithm for its approximately optimal solution. Furthermore, we design reasonable metrics to evaluate the FRs stability in terms of FRs locations and local image content. Extensive experiments demonstrate the effectiveness and efficiency of our work.
机译:最近,强大的可逆水印(RRW)获得了越来越多的利益,研究人员正在寻求更稳定的图像特征来设计用于本地图像区域保护的水印嵌入和提取模型。以前的研究表明,它很有希望构建用于RRW的本地特征区域(FRS)来处理这个问题。然而,选择非重叠FRS和评估RRW的FRS稳定性仍然具有挑战性。为了瞄准这个问题,我们首先基于FRS分布模式构造一个无向加权图,然后将非重叠FRS选择作为加权最大集团问题,并为其近似最佳解决方案开发最大增益比率算法。此外,我们设计合理的指标,以评估FRS位置和本地图像内容的FRS稳定性。广泛的实验表明了我们工作的有效性和效率。

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