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A new measure of image scrambling degree based on statistical hypothesis testing

机译:基于统计假设检验的图像置乱度新度量

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Digital image scrambling is an effective tool in preprocessing and post-pressing of data hiding, digital watermarking and image encryption. In order to evaluate the image scrambling performance, different scrambling methods have been proposed by different authors based on different assumptions. In this paper, a new measure of image scrambling degree based on the method of Chi square good of fitness hypothesis testing is proposed. Using the Chi square estimator and its P-value, we can evaluate the image scrambling degree by testing the randomness of any specific region. Scrambling degrees constructed using the method of hypothesis testing have solid theoretical foundation and are more rational than some constructive way. Experiments on the images scrambled by the Arnold transformation and the sub-affine transformation show that the new scrambling degree (Chi square or its P-value) has good consistency with the inspection result of human visual system.
机译:数字图像加扰是数据隐藏,数字水印和图像加密的预处理和后压处理的有效工具。为了评估图像加扰性能,不同的作者基于不同的假设提出了不同的加扰方法。本文提出了一种基于卡方拟合优度假设检验方法的图像加扰度测量方法。使用卡方估计量及其P值,我们可以通过测试任何特定区域的随机性来评估图像加扰度。使用假设检验的方法构建的加扰度具有扎实的理论基础,比某些建设性的方法更合理。对通过Arnold变换和亚仿射变换进行加扰的图像的实验表明,新的加扰度(卡方或其P值)与人类视觉系统的检查结果具有良好的一致性。

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