一种基于混沌的算术逻辑单元及其对混淆的影响

G. Rose
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引用次数: 18

摘要

现代计算机系统容易受到诸如侧信道攻击或逆向工程之类的威胁,从而可能无意中将敏感数据或代码泄露给对手,这已不是什么秘密。这项工作的前提是,可以通过利用新兴的基于混沌的计算(由混沌振荡器构建的计算机系统)的固有复杂性来减轻此类安全威胁。更具体地说,本文考虑了一个基于混沌的算术逻辑单元,它由每个可能的操作的许多唯一实现组成。推广到基于混沌的计算机,每个操作的大量实现可能导致关键代码或数据的混淆。在这样的系统中,任何两个功能等效的操作在控制参数、功率分布等方面都是唯一的。此外,可以利用每个操作代码的许多可能实现来编译一个根据用户所知道的内容进行唯一定义的程序——这些知识本身可以通过加密来保护。当允许电路随时间演进时,各种操作的频率显示接近概率系统的频率。此外,假设成功攻击的难度与可能的唯一操作码集的数量直接相关,对于所提出的基于混沌的算术逻辑单元,操作码集的数量随着允许的进化时间呈指数增长。
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A Chaos-Based Arithmetic Logic Unit and Implications for Obfuscation
It is no secret that modern computer systems are vulnerable to threats such as side-channel attack or reverse engineering whereby sensitive data or code could be unintentionally leaked to an adversary. It is the premise of this work that the mitigation of such security threats can be achieved by leveraging the inherent complexity of emerging chaos-based computing (computer systems built from chaotic oscillators). More specifically, this paper considers a chaos-based arithmetic logic unit which consists of many unique implementations for each possible operation. Generalizing to a chaos-based computer, a large number of implementations per operation can enable the obfuscation of critical code or data. In such a system, any two functionally equivalent operations are unique in terms of control parameters, power profiles, and so on. Furthermore, many possible implementations for each operational code can be leveraged to compile a program that is uniquely defined in terms of what the user knows -- such knowledge which itself could be protected via encryption. The frequencies of the various operations are shown to approach that of a probabilistic system as the circuit is allowed to evolve in time. Further, the difficulty of a successful attack is assumed to be directly related to the number of unique op-code sets possible which is shown to grow exponentially with allowed evolution time for the proposed chaos-based arithmetic logic unit.
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