A secure and unclonable embedded system using instruction-level PUF authentication

J. Zheng, Dongfang Li, M. Potkonjak
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引用次数: 13

Abstract

In this paper we present a secure and unclonable embedded system design that can target either an FPGA or an ASIC technology. The premise of the security is that the executed machine code and the executing environment (the embedded processor) will authenticate each other at a per-instruction basis using Physical Unclonable Functions (PUFs) that are built into the processor. The PUFs ensure that the execution of the binary code may only proceed if the binary is compiled with the correct intrinsic knowledge of the PUFs, and that such intrinsic knowledge is virtually unique to each processor and therefore unclonable. We will explain how to implement and integrate the PUFs into the processor's execution environment such that each instruction is authenticated and de-obfuscated on-demand and how to transform an ordinary binary executable into PUF-aware, obfuscated binaries. We will also present a prototype system on a Xilinx Spartan6-based FPGA board.
使用指令级PUF认证的安全且不可克隆的嵌入式系统
本文提出了一种安全的、不可克隆的嵌入式系统设计方案,既可以针对FPGA,也可以针对ASIC技术。安全性的前提是,被执行的机器码和执行环境(嵌入式处理器)将使用内置于处理器中的物理不可克隆函数(puf)以每条指令为基础对彼此进行身份验证。puf确保二进制代码的执行只有在使用puf的正确固有知识编译二进制代码时才能进行,并且这种固有知识实际上对每个处理器都是唯一的,因此是不可克隆的。我们将解释如何实现puf并将其集成到处理器的执行环境中,以便按需对每个指令进行身份验证和去混淆,以及如何将普通的二进制可执行文件转换为可识别puf的、经过混淆的二进制文件。我们还将在基于Xilinx spartan6的FPGA板上展示一个原型系统。
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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