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Configuring Agentic AI Coding Tools : An Exploratory Study
Galster, Matthias; Mohsenimofidi, Seyedmoein; Lulla, Jai Lal; u. a. (2026): Configuring Agentic AI Coding Tools : An Exploratory Study, in: Bamberg: Otto-Friedrich-Universität, S. 11–20.
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Publisher Information:
Year of publication:
2026
Pages:
Source/Other editions:
Tse-Hsun (Peter) Chen, Chao Peng, und Baishakhi Ray (Hrsg.), Proceedings of the 3rd ACM International Conference on AI-Powered Software, New York: ACM, 2026, S. 11–20, ISBN: 979-8-4007-2601-9
Year of first publication:
2026
Language:
English
Abstract:
Agentic AI coding tools increasingly automate software development tasks. Developers can configure these tools through versioned repository-level artifacts such as Markdown and JSON files. We present a systematic analysis of configuration mechanisms for agentic AI coding tools, covering Claude Code, GitHub Copilot, Cursor, Gemini, and Codex. We identify eight configuration mechanisms spanning from static context to executable and external integrations and, in an empirical study of 2,853 GitHub repositories, examine whether and how they are adopted, with a detailed analysis of Context Files, Skills, and Subagents. First, Context Files dominate the configuration landscape and are often the sole mechanism in a repository, with AGENTS.md emerging as an interoperable standard across tools. Second, few repositories adopt advanced mechanisms such as Skills and Subagents. Skills predominantly rely on static instructions rather than executable scripts. Third, distinct configuration practices are forming around different tools, with Claude Code users employing the broadest range of mechanisms. These findings establish an empirical baseline for understanding how developers configure agentic tools, suggest that AGENTS.md serves as a natural starting point, and motivate longitudinal and experimental research on how configuration strategies evolve and affect agent performance.
Keywords: ; ; ;
Software Engineering
Generative AI
AI Agents
Configuration
Type:
Conferenceobject
Activation date:
August 3, 2026
Project(s):
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https://fis.uni-bamberg.de/handle/uniba/116537