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Steganography of Digital Watermark Based on Artificial Neural Networks in Image Communication and Intellectual Property Protection

机译:基于人工神经网络的数字水印隐写技术在图像通信和知识产权保护中的应用

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摘要

In this paper, a novel steganography of digital watermark scheme which contains digital watermark embedding and extraction processes is proposed. The proposed scheme is based on an iterative process of Arnold scrambling transform which is controlled by secret key shared by copyright owner and authorized users, and the extension of morphological component analysis theory which utilizes morphological diversity as the kernel role in blind source separation. This scheme overcomes the problem of too narrow hidden data bandwidth in traditional LSB replacement or LSB matching schemes. Compared with classic JPEG steganography schemes, the proposed scheme has much higher embedding capacity and broader applicability scope. Images acquired in experiments and the analysis of experimental results both prove the effectiveness of proposed scheme. Objective quantitative results of the peak signal to noise ratio, structural similarity, and normalized correlation indices confirm its brilliant steganography capability as well as its fine robustness to different noise attacks through communication channel.
机译:本文提出了一种新的数字水印方案隐写术,该方案包含数字水印的嵌入和提取过程。该方案基于Arnold加扰变换的迭代过程,该过程受版权拥有者和授权用户共享的密钥控制,并且扩展了形态学分析理论的扩展,该理论利用形态学多样性作为盲源分离中的核心角色。该方案克服了传统LSB替换或LSB匹配方案中隐藏数据带宽过窄的问题。与经典的JPEG隐写术方案相比,该方案具有更高的嵌入能力和更广泛的适用范围。实验中获得的图像和实验结果分析均证明了该方案的有效性。峰值信噪比,结构相似性和归一化相关指数的客观定量结果证实了其出色的隐写能力以及对通过通信通道的各种噪声攻击的优良鲁棒性。

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