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A New Scheme for Implementing S-box Based on Neural Network

机译:基于神经网络实现S箱的新方案

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S-box (Substitution box) is one of the most important components in the block cipher. As the high non-linearity of neural network (or artificial neural network, ANN) is in high accordance with the properties of cipher, the application of neural network in cryptography becomes a significant orientation. In this paper, we present a new scheme for implementing S-box used in ciphers basing on neural network. Differing from the previous network models, the proposed network, which can be used to implement any Boolean function in S-box, consists of multiple neural network perceptrons, and each perceptron only has a low number of input variables (4-bits input). By DNA-like learning algorithm, it is very convenient to train the weight and threshold values of the network.
机译:S-Box(替换盒)是块密码中最重要的组件之一。作为神经网络的高非线性(或人工神经网络,ANN)高于密码的性质,神经网络在密码术中的应用成为一个重要的方向。在本文中,我们提出了一种在神经网络中基于Ciphers中使用的S盒的新方案。与先前的网络模型不同,该网络可以用于在S-Box中实现任何布尔函数的网络,包括多个神经网络感知,并且每个Perceptron仅具有少量的输入变量(4位输入)。通过DNA样学习算法,培训网络的权重和阈值非常方便。

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