资源受限嵌入式系统安全的物理不可克隆功能和动态局部重构

Goutham Pocklassery, Venkata K. Kajuruli, J. Plusquellic, F. Saqib
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引用次数: 5

摘要

随着无处不在的无线连接,使用摄像头、传感器、恒温器、自动驾驶汽车、医疗植入物、RFID等的嵌入式系统环境中的身份验证和加密变得越来越重要。在这些类型的资源受限的应用程序中,基于硬件的身份验证和加密提供了几个优势,包括更小的占用空间和更低的能耗。使用物理不可克隆功能或puf实现的位串和密钥生成可以进一步降低身份验证和加密操作的资源利用率,并通过消除片上非易失性存储器(NVM)来降低总体系统成本。在本文中,我们提出了一种动态部分重构(DPR)策略,用于在fpga上使用PUF实现位串和密钥生成的身份验证和加密,作为优化有限区域资源利用率的一种手段。我们表明,与DPR相关的时间和能量损失在现代基于SoC的架构中很小,例如Xilinx Zynq SoC,因此,整体方法对于新兴资源受限的物联网应用非常有吸引力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Physical unclonable functions and dynamic partial reconfiguration for security in resource-constrained embedded systems
Authentication and encryption within an embedded system environment using cameras, sensors, thermostats, autonomous vehicles, medical implants, RFID, etc. is becoming increasing important with ubiquitious wireless connectivity. Hardware-based authentication and encryption offer several advantages in these types of resource-constrained applications, including smaller footprints and lower energy consumption. Bitstring and key generation implemented with Physical Unclonable Functions or PUFs can further reduce resource utilization for authentication and encryption operations and reduce overall system cost by eliminating on-chip non-volatile-memory (NVM). In this paper, we propose a dynamic partial reconfiguration (DPR) strategy for implementing both authentication and encryption using a PUF for bitstring and key generation on FPGAs as a means of optimizing the utilization of the limited area resources. We show that the time and energy penalties associated with DPR are small in modern SoC-based architectures, such as the Xilinx Zynq SoC, and therefore, the overall approach is very attractive for emerging resource-constrained IoT applications.
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