conference-paper Open access

Bran: Reduce Vulnerability Search Space in Large Open Source Repositories by Learning Bug Symptoms

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Software is continually increasing in size and complexity, and therefore, vulnerability discovery would benefit from techniques that identify potentially vulnerable regions within large code bases, as this allows for easing vulnerability detection by reducing the search space. Previous work has explored the use of conventional code-quality and complexity metrics in highlighting suspicious sections of (source) code. Recently, researchers also proposed to reduce the vulnerability search space by studying code properties with neural networks. However, previous work generally failed in leveraging the rich metadata that is available for long-running, large code repositories.

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DOI
10.1145/3433210.3453115
OpenAlex
W3167569033
Document type
conference-paper
Language
EN
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