Implementation of True Random Number Generator based on Double-Scroll Attractor circuit with GST memristor emulator

Togzhan Abzhanova, I. Dolzhikova, A. P. James
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引用次数: 4

Abstract

The cryptographic security provided by various techniques of random number generator (RNG) construction is one of the developing research areas today. Among various types of RNG, the true random bit generator (TRBG) can be considered as the most unpredictable and most secure because its randomness seed is generated from chaotic sources. This paper proposes a design of TRBG model based on double-scroll attractors circuits with GST memristor. After implementation and simulation of the chaotic circuit with GST memristor emulator, the chaotic behavior of the output voltage and inductor current were received. Moreover, their dependence on the input voltage revealed the close to double-scroll form. The randomness generated from the proposed circuit was tested by analysis of the Fast Fourier Transform (FFT) and Lyapunov exponents of the output voltage.
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利用GST忆阻器仿真器实现双涡旋吸引电路的真随机数发生器
由各种随机数生成器(RNG)构造技术提供的密码安全性是当今发展中的研究领域之一。在各种类型的RNG中,真随机比特生成器(TRBG)可以认为是最不可预测和最安全的,因为它的随机种子是由混沌源产生的。本文提出了一种基于双涡旋吸引子电路和GST忆阻器的TRBG模型设计。利用GST忆阻器仿真器对混沌电路进行实现和仿真,得到了输出电压和电感电流的混沌行为。此外,它们对输入电压的依赖性显示出接近双涡旋的形式。通过分析输出电压的快速傅立叶变换(FFT)和李雅普诺夫指数,测试了该电路产生的随机性。
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