Enhancing Automated Program Repair using Patch Lightweighting and Context Information 


Vol. 52,  No. 8, pp. 670-676, Aug.  2025
10.5626/JOK.2025.52.8.670


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  Abstract

Large Language Models LLMs play a crucial role in the Automated Program RepairAPR field. However, their effectiveness is constrained by token limitations. When the number of tokens exceeds the model’s capacity, it struggles to fully utilize its capabilities, often failing to correctly detect and fix bugs. This study proposed an approach that could leverage patch lightweighting and context information to overcome these constraints. By incorporating the most semantically similar method as a context method and applying patch lightweighting to long methods, we ensured that the methods remained within the LLM’s token limit. Through this approach, experimental results demonstrated that effective bug fixing could be achieved with fewer tokens, improving repair efficiency.


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  Cite this article

[IEEE Style]

E. Jung, A. A. Safarovich, B. Lee, "Enhancing Automated Program Repair using Patch Lightweighting and Context Information," Journal of KIISE, JOK, vol. 52, no. 8, pp. 670-676, 2025. DOI: 10.5626/JOK.2025.52.8.670.


[ACM Style]

Eunseo Jung, Abdinabiev Aslan Safarovich, and Byungjeong Lee. 2025. Enhancing Automated Program Repair using Patch Lightweighting and Context Information. Journal of KIISE, JOK, 52, 8, (2025), 670-676. DOI: 10.5626/JOK.2025.52.8.670.


[KCI Style]

정은서, 아슬란 압디나비예프, 이병정, "패치 경량화와 문맥 정보를 활용한 프로그램 자동 정정 개선," 한국정보과학회 논문지, 제52권, 제8호, 670~676쪽, 2025. DOI: 10.5626/JOK.2025.52.8.670.


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