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首页> 外文期刊>Engineering Applications of Artificial Intelligence >Perceptually adaptive MC-SS image watermarking using GA-NN hybridization in fading gain
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Perceptually adaptive MC-SS image watermarking using GA-NN hybridization in fading gain

机译:遗传算法在衰落增益中的感知自适应MC-SS图像水印

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摘要

This paper proposes an optimized multicarrier (MC) spread spectrum (SS) image watermarking scheme using hybridization of genetic algorithms (GA) and neural networks (NN). Data embedding is done in the mutually independent host components using the distinct code patterns that are assigned to the different watermark bits. GA determines the gradient thresholds for the pixel intensities to partition the host image into the edge, the smooth, and the texture regions as well as determines the watermark embedding strengths. The goal is to optimize the imperceptibility and the data hiding capacity. A minimum mean square error combining (MMSEC) decoder is used and the weight factors are calculated using NN through training/learning. Stable decision variables thus obtained for the watermark bit detection are partitioned into the multiple groups to improve decoder performance by canceling out the multiple bit interfering effect. Simulation results show the relative performance gain achieved in this method compared to the existing other works including the biologically inspired approaches.
机译:本文提出了一种遗传算法(GA)和神经网络(NN)混合的优化多载波(MC)扩频(SS)图像水印方案。数据嵌入是使用分配给不同水印位的不同代码模式在相互独立的主机组件中完成的。 GA会确定像素强度的梯度阈值,以将主图像划分为边缘,平滑区域和纹理区域,并确定水印嵌入强度。目的是优化感知能力和数据隐藏能力。使用最小均方误差合并(MMSEC)解码器,并使用NN通过训练/学习来计算权重因子。这样获得的用于水印位检测的稳定决策变量被分成多个组,以通过消除多位干扰效应来提高解码器性能。仿真结果表明,与现有的包括生物学启发方法的其他工作相比,该方法可获得相对的性能提升。

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