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Random Number Generator Based on Hopfield Neural Network and SHA-2 (512)

机译:基于Hopfield神经网络和SHA-2的随机数生成器(512)

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摘要

With the rapid development of cryptography and network communication, random number is becoming more and more important in secure data communication. The nonlinearity of backward propagation neural network (BPNN) is used to improve the traditional random number generator (RNG). SHA-2 (512) hash function can ensure the unpredictability of the produced random numbers. So, a novel and secure RNG architecture is proposed in the presented paper, which is BPNN based on SHA-2 (512) hash function. The quality of random number generated by this proposed architecture can well satisfy the security of cryptographic system according to results of test suites standardized by the U.S. The proposed architecture can be used to improve performances such as power consumption, flexibility, cost and area in network security and security for cryptographic systems.
机译:随着加密技术和网络通信的飞速发展,随机数在安全数据通信中变得越来越重要。反向传播神经网络(BPNN)的非线性用于改进传统的随机数生成器(RNG)。 SHA-2(512)哈希函数可以确保产生的随机数的不可预测性。因此,本文提出了一种新颖,安全的RNG架构,即基于SHA-2(512)哈希函数的BPNN。根据美国标准化的测试套件的结果,该提议的体系结构生成的随机数质量可以很好地满足密码系统的安全性。该提议的体系结构可以用于提高性能,例如功耗,灵活性,成本和网络安全性和密码系统的安全性。

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