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On state encoding against power analysis attacks for finite state controllers

机译:针对有限状态控制器的针对功率分析攻击的状态编码

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Finite-state controllers are central to the design of numerous small-scale electronic appliances used in home automation, environment/infrastructure monitoring, health care and emerging safety-critical systems such as drones and self-driven cars. It is estimated that there will be 50 billion small-scale IoT devices by 2020. These devices, however, are extremely vulnerable to side-channel attacks, therefore low-cost, low-power defense methods are highly desirable. This paper presents an effective method for secure state encoding of finite-state machine (FSM) based controllers to defend against power analysis attacks. Given a user-defined graded security metric, we derive constrained state encoding for the FSM controllers to mitigate information leakage through the power side-channel, resulting in low-power designs. Experimental results using over 100 FSMs from BenGen and MCNC benchmark suites show a graded increase in encoding length (40-70% for restructured FSMs) depending on the level of security chosen. The mutual information between power side-channel and both Hamming attack models varies between 0 and 2.
机译:有限状态控制器对于设计用于家庭自动化,环境/基础设施监控,医疗保健和新兴安全关键系统(如无人机和自动驾驶汽车)的众多小型电子设备至关重要。据估计,到2020年,将有500亿个小型IoT设备。但是,这些设备极易受到边信道攻击,因此,非常需要低成本,低功耗的防御方法。本文提出了一种有效的方法来对基于有限状态机(FSM)的控制器进行安全状态编码,以防御功耗分析攻击。给定用户定义的分级安全性度量,我们为FSM控制器导出了约束状态编码,以减轻通过电源侧信道的信息泄漏,从而实现了低功耗设计。使用来自BenGen和MCNC基准套件的100多个FSM进行的实验结果表明,根据所选的安全级别,编码长度会逐渐增加(对于重组FSM,为40-70%)。功率旁信道与两种汉明攻击模型之间的相互信息在0到2之间变化。

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