Parameter Dependencies and Optimization of True Random Number Generator (TRNG) using Genetic Algorithm (GA)

V. Deotare, D. Padole, Lalit Wadhwa
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Abstract

In the hostile environment, use of pseudo-random numbers in encryption algorithm has become difficult due to increased computing power of attackers. To overcome from the hackers true random number generator solving by giving unique random sequence. Authors recommend based on experiment to add parameters dependencies of analog Phase-Locked Loop (PLL) based on TRNG, and it also tries to optimize few parameters using Genetic Algorithm (GA). The proposed approach selects optimum values for different parameters and increases flexibility, resource utilization, throughput. Digital architecture for optimized TRNG is obtained using Altera platform. Implementation the optimized TRNG on ALTERA QUARTUS-II DE0 board gives enhancement R and S parameters by 42.18% and 38.67% respectively.
基于遗传算法的真随机数生成器(TRNG)参数依赖及优化
在恶意环境下,由于攻击者计算能力的提高,在加密算法中使用伪随机数变得困难。通过给出唯一的随机序列来克服黑客对真随机数生成器的求解。作者在实验的基础上提出了在TRNG基础上增加模拟锁相环(PLL)参数依赖关系的方法,并尝试使用遗传算法(GA)对少数参数进行优化。该方法根据不同的参数选择最优值,提高了灵活性、资源利用率和吞吐量。利用Altera平台获得了优化后TRNG的数字架构。在ALTERA QUARTUS-II DE0板上实现优化后的TRNG, R和S参数分别提高了42.18%和38.67%。
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