Hash function based on efficient Chaotic Neural Network

Nabil Abdoun, S. E. Assad, Mohammad AbuTaha, R. Assaf, O. Déforges, Mohamad Khalil
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引用次数: 10

Abstract

This paper presents an efficient algorithm for constructing a secure Hash function based on Chaotic Neural Network structure. The proposed Hash function includes two main operations: Generation of Neural Network parameters using fast and efficient Chaotic Generator and Iteration of the message through the Chaotic Neural Network. Our theoretical analysis and experimental simulations showed that the implemented Hash function has good statistical properties, strong Collision Resistance and High Message Sensitivity.
基于高效混沌神经网络的哈希函数
提出了一种基于混沌神经网络结构构造安全哈希函数的高效算法。提出的哈希函数包括两个主要操作:使用快速高效的混沌生成器生成神经网络参数和通过混沌神经网络迭代消息。理论分析和实验仿真表明,所实现的哈希函数具有良好的统计性能、较强的抗碰撞性和较高的消息灵敏度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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