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基于随机自编码器神经网络和耦合混沌映射的联合加密模型

Joint Encryption Model Based on a Randomized Autoencoder Neural Network and Coupled Chaos Mapping.

作者信息

Hu Anqi, Gong Xiaoxue, Guo Lei

机构信息

School of Communication and Information Engineering, Chongqing University of Posts and Telecommunications, No. 2, Chongwen Road, Nanan District, Chongqing 400065, China.

Institute of Intelligent Communication and Network Security, Chongqing University of Posts and Telecommunications, No. 2, Chongwen Road, Nanan District, Chongqing 400065, China.

出版信息

Entropy (Basel). 2023 Aug 1;25(8):1153. doi: 10.3390/e25081153.

Abstract

Following an in-depth analysis of one-dimensional chaos, a randomized selective autoencoder neural network (AENN), and coupled chaotic mapping are proposed to address the short period and low complexity of one-dimensional chaos. An improved method is proposed for synchronizing keys during the transmission of one-time pad encryption, which can greatly reduce the usage of channel resources. Then, a joint encryption model based on randomized AENN and a new chaotic coupling mapping is proposed. The performance analysis concludes that the encryption model possesses a huge key space and high sensitivity, and achieves the effect of one-time pad encryption. Experimental results show that this model is a high-security joint encryption model that saves secure channel resources and has the ability to resist common attacks, such as exhaustive attacks, selective plaintext attacks, and statistical attacks.

摘要

在对一维混沌进行深入分析之后,提出了一种随机选择性自动编码器神经网络(AENN)和耦合混沌映射,以解决一维混沌的周期短和复杂度低的问题。针对一次性密码加密传输过程中的密钥同步提出了一种改进方法,该方法可以大大减少信道资源的使用。然后,提出了一种基于随机AENN和新型混沌耦合映射的联合加密模型。性能分析得出,该加密模型具有巨大的密钥空间和高敏感性,并实现了一次性密码加密的效果。实验结果表明,该模型是一种高安全性的联合加密模型,节省了安全信道资源,并且具有抵抗诸如穷举攻击、选择明文攻击和统计攻击等常见攻击的能力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9cb7/10453204/59a1382f82fc/entropy-25-01153-g001.jpg

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