Cao Yuan, Zhao Xiaojin, Ye Wenbin, Han Qingbang, Pan Xiaofang
College of Internet of Things Engineering, Hohai University, Changzhou 213022, China.
College of Electronic Science and Technology, Shenzhen University, Shenzhen 518060, China.
Sensors (Basel). 2018 Jan 23;18(2):322. doi: 10.3390/s18020322.
Authentication is a crucial security service for the wireless sensor networks (WSNs) in versatile domains. The deployment of WSN devices in the untrusted open environment and the resource-constrained nature make the on-chip authentication an open challenge. The strong physical unclonable function (PUF) came in handy as light-weight authentication security primitive. In this paper, we present the first ring oscillator (RO) based strong physical unclonable function (PUF) with high resilience to both the electromagnetic (EM) side-channel attack and the support vector machine (SVM) modelling attack. By employing an RO based PUF architecture with the current starved inverter as the delay cell, the oscillation power is significantly reduced to minimize the emitted EM signal, leading to greatly enhanced immunity to the EM side-channel analysis attack. In addition, featuring superior reconfigurability due to the conspicuously simplified circuitries, the proposed implementation is capable of withstanding the SVM modelling attack by generating and comparing a large number of RO frequency pairs. The reported experimental results validate the prototype of a 9-stage RO PUF fabricated using standard 65 nm complementary-metal-oxide-semiconductor (CMOS) process. Operating at the supply voltage of 1.2 V and the frequency of 100 KHz, the fabricated RO PUF occupies a compact silicon area of 250 μ m 2 and consumes a power as low as 5.16 μ W per challenge-response pair (CRP). Furthermore, the uniqueness and the worst-case reliability are measured to be 50.17% and 98.30% for the working temperature range of -40∼120 ∘ C and the supply voltage variation of ±2%, respectively. Thus, the proposed PUF is applicable for the low power, low cost and secure WSN communications.
认证是通用领域中无线传感器网络(WSN)至关重要的安全服务。WSN设备部署在不可信的开放环境中且具有资源受限的特性,这使得片上认证成为一个开放性挑战。强大的物理不可克隆功能(PUF)作为轻量级认证安全原语派上了用场。在本文中,我们提出了首个基于环形振荡器(RO)的强大物理不可克隆功能(PUF),它对电磁(EM)侧信道攻击和支持向量机(SVM)建模攻击均具有高抗性。通过采用基于RO的PUF架构,将电流饥饿反相器用作延迟单元,振荡功率显著降低,从而使发射的EM信号最小化,大大增强了对EM侧信道分析攻击的免疫力。此外,由于电路显著简化,所提出的实现方式具有卓越的可重构性,能够通过生成和比较大量RO频率对来抵御SVM建模攻击。所报告的实验结果验证了采用标准65纳米互补金属氧化物半导体(CMOS)工艺制造的9级RO PUF原型。该制造的RO PUF在1.2 V电源电压和100 KHz频率下工作,占用紧凑的250μm²硅面积,每个挑战 - 响应对(CRP)功耗低至5.16μW。此外,在-40∼120°C工作温度范围和±2%电源电压变化下,测量得到的唯一性和最坏情况可靠性分别为50.17%和98.30%。因此,所提出的PUF适用于低功耗、低成本且安全的WSN通信。