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Watermark detection from clustered halftone dots via learned dictionary

机译:通过学习词典从聚类半色调点检测水印

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摘要

Modulating the orientation of elliptically clustered dots in each halftone cell enables binary data to be embedded into the clustered halftone dots. In this paper, a new decoding method is proposed for recovering hidden binary data from clustered halftone dots by using learned dictionaries, which are optimized to represent clustered dots with different elliptical shapes. The basic idea is that the reconstruction errors of the clustered dots in a halftone cell are differentiable according to the dictionaries used. The experimental results showed that determining which of the learned dictionaries provides a minimum reconstruction error in a halftone cell can reveal the orientation of the clustered dots and thus indicate the embedded binary data.
机译:在每个半色调单元中调制椭圆形聚集点的方向使二进制数据可以嵌入到聚集半色调点中。本文提出了一种新的解码方法,即利用学习词典从聚类半色调点中恢复隐藏的二进制数据,并对其进行优化以表示具有不同椭圆形的聚类点。基本思想是,根据所使用的字典,可以区分半色调单元中的聚集点的重构误差。实验结果表明,确定哪个学习词典在半色调单元中提供最小的重构误差可以揭示聚类点的方向,从而指示嵌入的二进制数据。

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