脆弱性(计算)
计算机科学
计算机安全
可怜
数据库事务
深度学习
脆弱性评估
人工智能
心理学
心理弹性
心理治疗师
社会心理学
程序设计语言
作者
Yizhou Chen,Zeyu Sun,Zhihao Gong,Dan Hao
标识
DOI:10.1145/3597503.3639173
摘要
Currently, smart contract vulnerabilities (SCVs) have emerged as a major factor threatening the transaction security of blockchain. Existing state-of-the-art methods rely on deep learning to mitigate this threat. They treat each input contract as an independent entity and feed it into a deep learning model to learn vulnerability patterns by fitting vulnerability labels. It is a pity that they disregard the correlation between contracts, failing to consider the commonalities between contracts of the same type and the differences among contracts of different types. As a result, the performance of these methods falls short of the desired level.
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