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Optimal Watermark Embedding and Detection Strategies Under Limited Detection Resources

机译:有限检测资源下的最优水印嵌入与检测策略

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摘要

An information-theoretic approach is proposed to watermark embedding and detection under limited detector resources. First, the attack-free scenario is considered under which asymptotically optimal decision regions in the Neyman-Pearson sense are proposed, along with the optimal embedding rule. Later, the case of zero-mean independent and identically distributed (i.i.d.) Gaussian covertext distribution is explored with unknown variance under the attack-free scenario. For this case, a lower bound on the exponential decay rate of the false-negative probability is proposed. It is proven that the optimal embedding and detecting strategy is superior to the customary linear, additive embedding strategy in the exponential sense. Finally, these results are extended to the case of memoryless attacks and general worst case attacks. Optimal decision regions and embedding rules are offered, and the worst attack channel is identified.
机译:提出了一种信息理论的方法来在有限的检测器资源下进行水印嵌入和检测。首先,考虑了无攻击场景,在该场景下,提出了内曼-皮尔逊意义上的渐近最优决策区域以及最优嵌入规则。后来,在无攻击的情况下探索了零均值独立且均匀分布(i.i.d.)高斯Covertext分布的情况。对于这种情况,提出了假负概率的指数衰减率的下限。实践证明,在指数意义上,最优的嵌入和检测策略优于常规的线性加性嵌入策略。最后,这些结果扩展到无记忆攻击和一般最坏情况攻击的情况。提供最佳决策区域和嵌入规则,并确定最差的攻击渠道。

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