LLM-Enabled Ontology Alignment to Support Complex Decision-Making in the Built Environmen
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AESOP
Abstract
Cross-domain knowledge integration is crucial for complex urban and architectural decision-making, with ontology engineering playing a foundational role. To address limited automation and low interpretability in ontology alignment, this study proposes an LLM-powered agent framework to support ontology reuse across built environment domains. The performance of four LLMs and three prompt strategies is explored in alignment tasks. Three specialised agents, for context generation, expert validation, and explanation synthesis, are proposed and integrated with retrieval and mapping agents. Together they form a closed-loop framework linking automatic alignment, expert review, and explanatory feedback. This agent-enhanced architecture improves the traceability and interpretability of alignment results and facilitates expert involvement and iterative refinement, offering a solid foundation for managing and reusing ontologies in complex urban-scale contexts.
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Planning as a Transformative Action in an Age of Planetary Crisis. Proceedings of the AESOP Annual Congress 2025, Istanbul, Türkiye, 7–11 July 2025
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Jiang, R., Tunçer, B., & Ataman, C. (2025). LLM-enabled ontology alignment to support complex decision-making in the built environment. In AESOP 2025 annual congress: Book of proceedings (pp. 3408–3423). Association of European Schools of Planning.
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Except where otherwised noted, this item's license is described as Attribution 4.0 International
