FaultMeter:分组密码软件的定量故障攻击评估

K. Keerthi, C. Rebeiro
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引用次数: 2

摘要

故障攻击是一类有效的物理攻击,它利用设备操作期间注入的故障从加密设备窃取密钥。错误攻击的成功取决于:(a)密码的加密特性,(b)程序结构,以及(c)底层硬件架构。虽然有一些工具可以自动化故障攻击评估过程,但它们都没有考虑到所有三个影响方面。本文提出了一个名为FaultMeter的框架,该框架建立在最新技术的基础上,不仅可以识别分组密码软件中的故障脆弱位置,还可以对每个脆弱位置进行量化。量化提供了成功开发注入断层的可能性。它考虑了密码的密码学特性、实现的结构以及底层指令集体系结构(ISA)对故障的敏感性。我们演示了FaultMeter的一个应用程序,它可以自动在程序中插入最优数量的对策,以满足用户的安全要求,同时最大限度地减少开销。我们通过在多个硬件平台上评估五种密码实现来展示FaultMeter框架的多功能性,即ARM(32位和64位),RISC-V(32位和64位),TI MSP-430(16位)和Intel x86(64位)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
FaultMeter: Quantitative Fault Attack Assessment of Block Cipher Software
Fault attacks are a potent class of physical attacks that exploit a fault njected during device operation to steal secret keys from a cryptographic device. The success of a fault attack depends intricately on (a) the cryptographic properties of the cipher, (b) the program structure, and (c) the underlying hardware architecture. While there are several tools that automate the process of fault attack evaluation, none of them consider all three influencing aspects.This paper proposes a framework called FaultMeter that builds on the state-of-art by not just identifying fault vulnerable locations in a block cipher software, but also providing a quantification for each vulnerable location. The quantification provides a probability that an injected fault can be successfully exploited. It takes into consideration the cryptographic properties of the cipher, structure of the implementation, and the underlying Instruction Set Architecture’s (ISA) susceptibility to faults. We demonstrate an application of FaultMeter to automatically insert optimal amounts of countermeasures in a program to meet the user’s security requirements while minimizing overheads. We demonstrate the versatility of the FaultMeter framework by evaluating five cipher implementations on multiple hardware platforms, namely, ARM (32 and 64 bit), RISC-V (32 and 64 bit), TI MSP-430 (16-bit) and Intel x86 (64-bit).
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