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首页> 外文期刊>Quality Control, Transactions >New DNA Coded Fuzzy Based (DNAFZ) S-Boxes: Application to Robust Image Encryption Using Hyper Chaotic Maps
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New DNA Coded Fuzzy Based (DNAFZ) S-Boxes: Application to Robust Image Encryption Using Hyper Chaotic Maps

机译:新的DNA编码模糊基于(DNAFZ)S盒:应用于使用超混沌映射的强大图像加密

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摘要

This article proposes a novel approach of improvising the cryptographic features of substitution-boxes (S-Box) based on the Choquet Fuzzy Integral (CFI) and DNA techniques. First, we propose a strong structure for the construction of four S-Boxes using CFI. The key for generating the CFI based (FZ) S-Boxes consists of two parts, namely, an external secret key and a secret image. Each of these FZ S-boxes is then encoded using DNA techniques, with dynamic rules selection which is dictated by a secret control code. The resultant four S-boxes are designated as DNAFZ S-Boxes. To apply for image encryption, the plain image is, at first 8-bit binary-coded, shuffled by an M-sequence, and down-sampled into four sub-images. Subsequently, the pixel values of each sub-image are replaced with the corresponding values of one of the four DNAFZ S-Boxes. Next, each DNAFZ encoded sub-image is diffused with a different DNA encoded chaotic sequence from Chen’s hyper-chaotic map. Finally, the four DNAFZ/Chaotic encoded sub-images are combined to build the final encrypted image. The proposed DNAFZ S-boxes shows excellent statistical properties under majority logic criterions such as correlation, homogeneity, energy, entropy, and contrast. Moreover, numerical simulation is used to examine the efficacy of encrypted images against different attacks. In particular, the values of the pixel correlation coefficient are found to be quite small either horizontally, vertically, or diagonally (between 7.8597e-04 and 0.00527, between 8.7856e-04 and 0.00452, and between 0.00241 and 0.00021, respectively). In addition, the information entropy of the encrypted image is found to be within the range of (7.9965:7.9989) which is very near to the ideal value of 8. As for the UACI and the NPCR, they are in the ranges between 33.46 and 33.32 and between 99.58 and 99.62, respectively. These values are also very close to the optimum ones. The results are compared to those of other encryption algorithms and proved that the proposed encryption method delivers better results than other conventional ones including LSS chaotic map, Arnold transforms, Dynamic Henon map, Hybrid chaotic map optimized substitution, and cubic S-Box.
机译:本文提出了一种新颖的改进基于Chotquet模糊积分(CFI)和DNA技术的替换箱(S-Box)的密码特征的方法。首先,我们提出了一种强大的结构,用于建造四个S箱使用CFI。用于生成基于CFI(FZ)S盒的关键由两个部分组成,即外部秘密密钥和秘密图像。然后使用DNA技术对这些FZ S箱中的每一个进行编码,具有动态规则选择,其由秘密控制代码决定。所得到的四个S盒被指定为DNAFZ S箱。要申请图像加密,纯图像是在前8位二进制编码的,由M序列播放,然后向下抽样成四个子图像。随后,用四个DNAFZ S盒中的一个的相应值替换每个子图像的像素值。接下来,每个DNAFZ编码的子图像与来自Chen的超混沌图的不同DNA编码混沌序列扩散。最后,组合四个DNAFZ /混沌编码子图像以构建最终加密图像。所提出的DNAFZ S盒在多数逻辑标准下显示出优异的统计特性,例如相关,均匀性,能量,熵和对比度。此外,数值模拟用于检查加密图像对不同攻击的功效。特别地,发现像素相关系数的值被水平,垂直或对角线(在7.8597E-04和0.00527之间,在8.7856E-04和0.00452之间,分别为0.00241和0.00021)。此外,发现加密图像的信息熵在(7.9965:7989)的范围内,其非常接近8.至于UACI和NPCR,它们在33.46之间的范围内33.32分别在99.58和99.62之间。这些值也非常接近最佳。结果与其他加密算法的结果进行了比较,并证明了所提出的加密方法提供比其他传统方式更好的结果,包括LSS混沌映射,Arnold变换,动态HENON地图,混合混沌映射优化替代和立方S箱。

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