Adiabatic Computing Based Low-Power and DPA-Resistant Lightweight Cryptography for IoT Devices

H. Thapliyal, T. S. S. Varun, S. D. Kumar
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引用次数: 12

Abstract

Internet of Things (IoT) devices are mostly small and operate wirelessly on limited battery supply, and therefore have stringent constraints on power consumption and hardware resources. Lightweight cryptography (LWC) provides cryptographic solutions for resource-constrained IoT devices. LWC based IoT devices are vulnerable to side-channel attacks such as Differential Power Analysis (DPA). The existing CMOS-based countermeasures for DPA are not suitable for circuits working under energy constraints. Adiabatic logic is one of the promising computing paradigms to design energy-efficient and DPAresistant hardware. Therefore, we have investigated the usefulness of adiabatic logic for low-power and DPA-resistant LWC for IoT devices. In this paper, the PRESENT-80 LWC algorithm is used as a benchmark circuit. The PRESENT-80 algorithm is implemented using Symmetric Pass Gate Adiabatic Logic (SPGAL). SPICE simulations at 12.5 MHz validated that one round of PRESENT-80 implemented using SPGAL gates saves 83% and 91% of power consumption in comparison to CMOS and SABL (Sense Amplifier Based Logic) based implementations, respectively. The security of SPGAL based PRESENT-80 has been evaluated by performing a DPA attack through SPICE simulations. We proved that the SPGAL-based implementation of the PRESENT-80 algorithm is resistant to DPA attacks. Further, low-leakage nano-electronic device FinFET can provide powerefficient solutions for IoT devices. Therefore, the design of the PRESENT-80 algorithm using FinFET based SPGAL gates is also presented. The simulations proved that adiabatic FinFET circuits consume low-power and are more resistant to DPA attacks as compared to adiabatic CMOS circuits.
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基于绝热计算的物联网设备低功耗和抗dpa轻量级加密技术
物联网(IoT)设备大多很小,并且在有限的电池供应下以无线方式运行,因此对功耗和硬件资源有严格的限制。轻量级加密(LWC)为资源受限的物联网设备提供加密解决方案。基于LWC的物联网设备容易受到侧信道攻击,如差分功率分析(DPA)。现有的基于cmos的DPA对抗方法不适用于能量受限的电路。绝热逻辑是一种很有前途的计算范式,可用于设计节能和抗dpw硬件。因此,我们研究了绝热逻辑对物联网设备低功耗和抗dpa LWC的有用性。本文采用PRESENT-80 LWC算法作为基准电路。PRESENT-80算法采用对称通门绝热逻辑(SPGAL)实现。12.5 MHz的SPICE仿真验证了使用SPGAL门实现的一轮PRESENT-80与基于CMOS和SABL(基于逻辑的感测放大器)的实现相比,分别节省了83%和91%的功耗。基于SPGAL的PRESENT-80的安全性通过SPICE模拟执行DPA攻击进行了评估。我们证明了基于spgal的PRESENT-80算法能够抵抗DPA攻击。此外,低泄漏的纳米电子器件FinFET可以为物联网设备提供节能解决方案。因此,本文还提出了基于FinFET的SPGAL门的PRESENT-80算法的设计。仿真结果表明,与绝热CMOS电路相比,绝热FinFET电路功耗低,抗DPA攻击能力强。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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