SCALM: Detecting Bad Practices in Smart Contracts Through LLMs
Zongwei Li, Xiaoqi Li, Wenkai Li, Xin Wang
摘要
As the Ethereum platform continues to mature and gain widespread usage, it is crucial to maintain high standards of smart contract writing practices. While bad practices in smart contracts may not directly lead to security issues, they do elevate the risk of encountering problems. Therefore, to understand and avoid these bad practices, this paper introduces the first systematic study of bad practices in smart contracts, delving into over 35 specific issues. Specifically, we propose a large language models (LLMs)-based framework, SCALM. It combines Step-Back Prompting and Retrieval-Augmented Generation (RAG) to effectively identify and address various bad practices. Our extensive experiments using multiple LLMs and datasets have shown that SCALM outperforms existing tools in detecting bad practices in smart contracts.
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它引用的顶会 Paper15
- Making Smart Contracts SmarterLoi Luu, Duc-Hiep Chu, Hrishi Olickel, Prateek Saxena 等CCS 2016 · 被引用 2,306 次
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- Take a Step Back: Evoking Reasoning via Abstraction in Large Language ModelsHuaixiu Steven Zheng, Swaroop Mishra, Xinyun Chen, Heng-Tze Cheng 等ICLR 2024 · 被引用 216 次
- Ethainter: a smart contract security analyzer for composite vulnerabilitiesLexi Brent, Neville Grech, Sifis Lagouvardos, Bernhard Scholz 等PLDI 2020 · 被引用 163 次
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