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Interval type-2 fuzzy logic system based similarity evaluation for image steganography

机译:基于区间2型模糊逻辑系统的图像隐写相似度评估

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摘要

Similarity measure, also called information measure, is a concept used to distinguish different objects. It has been studied from different contexts by employing mathematical, psychological, and fuzzy approaches. Image steganography is the art of hiding secret data into an image in such a way that it cannot be detected by an intruder. In image steganography, hiding secret data in the plain or non-edge regions of the image is significant due to the high similarity and redundancy of the pixels in their neighborhood. However, the similarity measure of the neighboring pixels, i.e., their proximity in color space, is perceptual rather than mathematical. Thus, this paper proposes an interval type-2 fuzzy logic system (IT2 FLS) to determine the similarity between the neighboring pixels by involving an instinctive human perception through a rule-based approach. The pixels of the image having high similarity values, calculated using the proposed IT2 FLS similarity measure, are selected for embedding via the least significant bit (LSB) method. We term the proposed procedure of steganography as ‘IT2 FLS-LSB method’. Moreover, we have developed two more methods, namely, type-1 fuzzy logic system based least significant bits (T1FLS-LSB) and Euclidean distance based similarity measures for least significant bit (SM-LSB) steganographic methods. Experimental simulations were conducted for a collection of images and quality index metrics, such as PSNR (peak signal-to-noise ratio), UQI (universal quality index), and SSIM (structural similarity measure) are used. All the three steganographic methods are applied on dataset and the quality metrics are calculated. The obtained stego images and results are shown and thoroughly compared to determine the efficacy of the IT2 FLS-LSB method. We have also demonstrated the high payload capacity of our proposed method. Finally, we have done a comparative analysis of the proposed approach with the existing well-known steganographic methods to show the effectiveness of our proposed steganographic method.
机译:相似性度量(也称为信息度量)是用于区分不同对象的概念。已经通过使用数学,心理和模糊方法从不同的上下文研究了它。图像隐写术是一种以无法被入侵者检测到的方式将秘密数据隐藏到图像中的技术。在图像隐写术中,由于像素附近的像素具有高度的相似性和冗余性,因此在图像的平原或非边缘区域隐藏秘密数据非常重要。然而,相邻像素的相似性度量,即它们在色彩空间中的接近度,是感知上的而不是数学上的。因此,本文提出了一种间隔2型模糊逻辑系统(IT2 FLS),通过基于规则的方法涉及本能的人类感知来确定相邻像素之间的相似性。使用最低有效位(LSB)方法选择使用建议的IT2 FLS相似性度量计算的具有高相似性值的图像像素进行嵌入。我们将隐写术的拟议程序称为“ IT2 FLS-LSB方法”。此外,我们还开发了两种方法,即基于类型1的模糊逻辑系统的最低有效位(T1FLS-LSB)和基于欧氏距离的最低有效位相似度度量(SM-LSB)隐写方法。对图像的集合进行了实验仿真,并使用了质量指标指标,例如PSNR(峰值信噪比),UQI(通用质量指标)和SSIM(结构相似性度量)。将这三种隐写方法全部应用​​于数据集并计算质量指标。显示获得的隐秘图像和结果并进行彻底比较,以确定IT2 FLS-LSB方法的功效。我们还证明了我们提出的方法的高负载能力。最后,我们对所提出的方法与现有的众所周知的隐秘方法进行了比较分析,以证明我们所提出的隐秘方法的有效性。

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