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High Imperceptibility Medical Image Watermarking Scheme Based on Slantlet Transform by using Dynamic Visibility Threshold

机译:使用动态可见度阈值基于Slantlet变换的高官识医学图像水印方案

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Digital watermarking is being used for increasing the level of effectiveness and security of the documents transfer over the internet, especially in the biomedical field. This study examined and explored the new working domain for medical image watermarking by introducing a Dynamic Visibility Threshold (DVT) as a crossover from pure mathematics over the traditional fixed visibility threshold. Initially, for providing higher robustness against the watermarking attacks, the watermarking process is done on Slantlet Transform, an improved version of Discrete Wavelet Transform. By investigating the root of the medical image properties, we introduce the descriptive statistics namely Quantile Theory to deliver a dynamic value from the biomedical itself for the embedding process. Later, we had identified that the Third Quartile is the most optimum value for the DVT in terms of higher imperceptibility. This paper uses a standard dataset from BRAINIX, a medical database provided by OsiriX, Pixmeo SARL, and the effectiveness of the proposed method is analysed using MATLAB R2013a. The most obvious finding to emerge from this study is the convergence of descriptive statistics from pure mathematics and medical image watermarking from computer science, therefore shine new light on dynamic visibility threshold through mathematical theories. With the presence of descriptive statistics, quartile theory is being used to increase the imperceptibility of the watermarking in biomedical images.
机译:数字水印用于提高文档在互联网上转移的有效性和安全水平,特别是在生物医学领域。本研究通过引入动态可见度阈值(DVT)作为从传统的固定可见度阈值的纯数学的交叉作为交叉来检查并探索了用于医学图像水印的新工作领域。最初,为了对水印攻击提供更高的鲁棒性,水印过程是在Slantlet变换上完成的,改进的离散小波变换。通过调查医学图像属性的根,我们介绍了描述性统计,即量子理论,以从生物医学本身提供动态值以进行嵌入过程。后来,我们发现第三个四分位数是DVT在更高的难以察觉方面最佳的值。本文采用Brainix的标准数据集,使用Matlab R2013A分析了由Osirix,Pixmeo SARL提供的医疗数据库和所提出的方法的有效性。从本研究中出现的最明显的发现是从计算机科学的纯数学和医学图像水印的描述性统计的收敛性,因此通过数学理论从动态可见度阈值上发光。随着描述性统计的存在,逐步地用于增加生物医学图像中的水印的难以察觉。

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