在基于区块链的智能合约中实时检测多态恶意行为

Pub Date : 2024-03-20 DOI:10.1093/jigpal/jzae016
Darius Galiş, Ciprian Pungilă, Viorel Negru
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引用次数: 0

摘要

本文提出了一种实现实时多态行为检测的创新方法,并将其直接应用于以区块链为重点的智能合约。我们设计了一种基于非确定性有限状态机的方法来执行近似模式匹配,该方法使用一种通过类似于滑动窗口的概念实现的前瞻机制,并在自动机的每个状态使用基于阈值的相似性检查。我们介绍了我们的方法并将其形式化,讨论了我们面临的挑战,然后在实际环境中对其进行了测试。实验结果表明,与此类场景中常用的经典相似性测量方法相比,我们的方法大大加快了速度。
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Realtime polymorphic malicious behavior detection in blockchain-based smart contracts
This paper proposes an innovative approach to achieving real-time polymorphic behavior detection, and its direct application to blockchain-focused smart-contracts. We devise a method based on a non-deterministic finite state machine to perform approximate pattern-matching, using a look-ahead mechanism implemented through a concept similar to that of a sliding window, and using threshold-based similarity checking at every state in the automaton. We introduce and formalize our approach, discuss the challenges we faced and then test it in a real-world environment. The experimental results obtained showed a significant speed-up of our approach, as compared to the classic similarity measures used commonly in such scenarios.
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