Exploring the Effect of Multiple Natural Languages on Code Suggestion Using GitHub Copilot

Kei Koyanagi, Dong Wang, Kotaro Noguchi, Masanari Kondo, Alexander Serebrenik, Yasutaka Kamei, Naoyasu Ubayashi

Onderzoeksoutput: Hoofdstuk in Boek/Rapport/CongresprocedureConferentiebijdrageAcademicpeer review

Samenvatting

GitHub Copilot is an AI-enabled tool that automates program synthesis. It has gained significant attention since its launch in 2021. Recent studies have extensively examined Copilot's capabilities in various programming tasks, as well as its security issues. However, little is known about the effect of different natural languages on code suggestion. Natural language is considered a social bias in the field of NLP, and this bias could impact the diversity of software engineering. To address this gap, we conducted an empirical study to investigate the effect of three popular natural languages (English, Japanese, and Chinese) on Copilot. We used 756 questions of varying difficulty levels from AtCoder contests for evaluation purposes. The results highlight that the capability varies across natural languages, with Chinese achieving the worst performance. Furthermore, regardless of the type of natural language, the performance decreases significantly as the difficulty of questions increases. Our work represents the initial step in comprehending the significance of natural languages in Copilot's capability and introduces promising opportunities for future endeavors.
Originele taal-2Engels
TitelMSR '24
SubtitelProceedings of the 21st International Conference on Mining Software Repositories
Plaats van productieNew York
UitgeverijAssociation for Computing Machinery, Inc
Pagina's481-486
Aantal pagina's6
ISBN van elektronische versie979-8-4007-0587-8
DOI's
StatusGepubliceerd - 2 jul. 2024
Evenement21st International Conference on Mining Software Repositories, MSR 2024 - Lisbon, Portugal
Duur: 15 apr. 202416 apr. 2024

Congres

Congres21st International Conference on Mining Software Repositories, MSR 2024
Verkorte titelMSR 2024
Land/RegioPortugal
StadLisbon
Periode15/04/2416/04/24

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