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Secure multilevel permutation-diffusion based image encryption using chaotic and hyper-chaotic maps

机译:使用混沌和超混沌映射安全的多级置换扩散基于图像加密

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摘要

This paper proposes a technique that encrypt images using chaotic and hyper-chaotic maps. To attain a high level of security and to get a better encryption effect, the proposed technique performs multilevel permutation and diffusion operations such as block, pixel, and bit-level to encrypt images. In this technique, block-level permutation operation is first performed using Alpar's map followed by Arnold cat map based pixel-level permutations. Finally, in the permutation stage, hyper-chaotic map based bit-level shuffling operation is performed for over strengthening of the encryption system. To make the ciphertext totally independent of the plaintext, the proposed scheme performs all the three levels of diffusion operations such as bit, pixel, and block-level. In the diffusion stage, Piece-wise Linear Chaotic Map (PWLCM) based bit-level diffusion operation is first performed followed by pixel-level diffusion operation. Finally, block-level diffusion operation is performed to get encryption output. In each of the levels of encryption operation, a hash value (256-bits) of plaintext is used to strongly resist the algorithm against known-plaintext attack and chosen-plaintext attack. The security analyses and computer simulations indicate the good encryption outputs, higher key space and gray scale uniformity, stronger resistance of entropy, differential, and statistical attacks as well as fewer computations to perform encryption operation. This proves the strong ability of the proposed scheme to encrypt gray scale images.
机译:本文提出了一种通过混沌和超混沌映射加密图像的技术。为了获得高水平的安全性并获得更好的加密效果,所提出的技术执行多级置换和扩散操作,例如块,像素和比特级以加密图像。在该技术中,首先使用AlPar的地图执行块级置换操作,然后是基于Arnold Cat图的像素级置换。最后,在置换阶段,在加强系统上执行基于超混沌映射的比特级洗机操作。为了使密文完全独立于明文,所提出的方案执行诸如位,像素和块级别的所有三个级别的扩散操作。在扩散阶段,首先执行基于转换的线性混沌图(PWLCM)的比特级扩散操作,然后是像素电平扩散操作。最后,执行块级扩散操作以获得加密输出。在加密操作的每个级别中,明文的哈希值(256位)用于强烈抵制算法针对已知纯文本攻击和选择的策略攻击。安全分析和计算机模拟表明良好的加密输出,较高的关键空间和灰度均匀性,熵,差异和统计攻击的强度较强,并且计算加密操作的计算较少。这证明了提出的计划加密灰度图像的强大能力。

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