A Closer Look at the Chaotic Ring Oscillators based TRNG Design

Shuqin Su, Bohan Yang, Vladimir Rožić, Ming-Jen Yang, Min Zhu, Shaojun Wei, Leibo Liu
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Abstract

TRNG is an essential component for security applications. A vulnerable TRNG could be exploited to facilitate potential attacks or be related to a reduced key space, and eventually results in a compromised cryptographic system. A digital FIRO-/GARO-based TRNG with high throughput and high entropy rate was introduced by Jovan Dj. Golic (TC’06). However, the fact that periodic oscillation is a main failure of FIRO-/GARO-based TRNGs is noticed in the paper (Markus Dichtl, ePrint’15). We verify this problem and estimate the consequential entropy loss using Lyapunov exponents and the test suite of the NIST SP 800-90B standard. To address the problem of periodic oscillations, we propose several implementation guidelines based on a gate-level model, a design methodology to build a reliable GARO-based TRNG, and an online test to improve the robustness of FIRO-/GARO-based TRNGs. The gate-level implementation guidelines illustrate the causes of periodic oscillations, which are verified by actual implementation and bifurcation diagram. Based on the design methodology, a suitable feedback polynomial can be selected by evaluating the feedback polynomials. The analysis and understanding of periodic oscillation and FIRO-/GARO-based TRNGs are deepened by delay adjustment. A TRNG with the selected feedback polynomial may occasionally enter periodic oscillations, due to active attacks and the delay inconstancy of implementations. This inconstancy might be caused by self-heating, temperature and voltage fluctuation, and the process variation among different silicon chips. Thus, an online test module, as one indispensable component of TRNGs, is proposed to detect periodic oscillations. The detected periodic oscillation can be eliminated by adjusting feedback polynomial or delays to improve the robustness. The online test module is composed of a lightweight and responsive detector with a high detection rate, outperforming the existing detector design and statistical tests. The areas, power consumptions and frequencies are evaluated based on the ASIC implementations of a GARO, the sampling circuit and the online test module. The gate-level implementation guidelines promote the future establishment of the stochastic model of FIRO-/GARO-based TRNGs with a deeper understanding.
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基于TRNG设计的混沌环振荡器的深入研究
TRNG是安全应用程序的重要组件。易受攻击的TRNG可能被利用来促进潜在的攻击或与减少的密钥空间相关,并最终导致加密系统受损。Jovan Dj介绍了一种基于数字FIRO / garo的高通量、高熵率TRNG。Golic (TC 06年)。然而,本文注意到周期性振荡是基于FIRO / garo的trng的主要故障(Markus Dichtl, ePrint ' 15)。我们验证了这个问题,并使用Lyapunov指数和NIST SP 800-90B标准的测试套件估计了相应的熵损失。为了解决周期性振荡问题,我们提出了几种基于门级模型的实现指南,一种构建可靠的基于garo的TRNG的设计方法,以及一种在线测试来提高基于FIRO / garo的TRNG的鲁棒性。门级实现指南说明了周期振荡的原因,并通过实际实现和分岔图进行了验证。根据设计方法,通过对反馈多项式进行评估,选择合适的反馈多项式。通过时延调整加深了对周期振荡和基于FIRO / garo的trng的分析和理解。由于主动攻击和实现的延迟不恒定,具有所选反馈多项式的TRNG可能偶尔会进入周期振荡。这种不稳定可能是由于自热、温度和电压波动以及不同硅片之间的工艺差异造成的。为此,提出了一个在线测试模块,作为trng不可缺少的组成部分来检测周期振荡。可以通过调整反馈多项式或延迟来消除检测到的周期振荡,从而提高鲁棒性。在线检测模块由轻量、响应快的检测器组成,检测率高,优于现有的检测器设计和统计测试。基于GARO、采样电路和在线测试模块的ASIC实现,对面积、功耗和频率进行了评估。门级实现指南将对未来基于FIRO / garo的trng随机模型的建立有更深入的理解。
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