2022
DOI: 10.48550/arxiv.2202.06043
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RoPGen: Towards Robust Code Authorship Attribution via Automatic Coding Style Transformation

Zhen Li,
Guenevere,
Chen Chen
et al.

Abstract: Source code authorship attribution is an important problem often encountered in applications such as software forensics, bug fixing, and software quality analysis. Recent studies show that current source code authorship attribution methods can be compromised by attackers exploiting adversarial examples and coding style manipulation. This calls for robust solutions to the problem of code authorship attribution. In this paper, we initiate the study on making Deep Learning (DL)-based code authorship attribution r… Show more

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