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Urban Planning in the Age of Agentic AI: Emerging Paradigms and Prospects

作者:R. Liu, Tao Zhe, Zhong-Ren Peng, Necati Catbas, Xinyue Ye, Dongjie Wang, Yanjie Fu · 发表于:ACM SIGKDD Explorations Newsletter · 年份:2025 · DOI:10.1145/3787470.3787474 · 被引用次数:5 · 研究领域:Smart Cities and Technologies、Human Mobility and Location-Based Analysis、Geographic Information Systems Studies

Generative AI, large language models (LLMs), and agentic AI have emerged separately of urban planning. However, the convergence between AI and urban planning presents an interesting opportunity towards AI urban planners. Existing studies conceptualizes urban planning as a generative AI task, where AI synthesizes land-use configurations under geospatial, social, and human-centric constraints and reshape automated urban design. We further identify critical gaps of existing generative urban planning studies: 1) the generative structure has to be predefined with strong assumption: all of adversarial networks, di!usion models, hierarchical zone-POI generative structure are predefined by humans; 2) ignore the power of domain expert developed tools: domain urban planners have developed various tools in the urban planning process guided by urban theory, while existing pure neural networks based generation ignore the power of the tools developed by urban planner practitioners. To address these limitations, we outline a future research direction agentic urban AI planner, calling for a new synthesis of agentic AI and participatory urbanism that integrates AI capabilities with domain expertise and public engagement.