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PlanGPT: Enhancing Urban Planning with Tailored Language Model and Efficient Retrieval

He Zhu, Wenjia Zhang, Nuoxian Huang, Boyang Li, Luyao Niu, Zipei Fan, Tianle Lun, Yicheng Tao, Junyou Su, Zhaoya Gong, Chenyu Fang, Xing Liu

TL;DR

PlanGPT, the first specialized Large Language Model tailored for urban and spatial planning, is introduced, which leverages a customized local database retrieval framework, domain-specific fine-tuning of base models, and advanced tooling capabilities.

Abstract

In the field of urban planning, general-purpose large language models often struggle to meet the specific needs of planners. Tasks like generating urban planning texts, retrieving related information, and evaluating planning documents pose unique challenges. To enhance the efficiency of urban professionals and overcome these obstacles, we introduce PlanGPT, the first specialized Large Language Model tailored for urban and spatial planning. Developed through collaborative efforts with institutions like the Chinese Academy of Urban Planning, PlanGPT leverages a customized local database retrieval framework, domain-specific fine-tuning of base models, and advanced tooling capabilities. Empirical tests demonstrate that PlanGPT has achieved advanced performance, delivering responses of superior quality precisely tailored to the intricacies of urban planning.

PlanGPT: Enhancing Urban Planning with Tailored Language Model and Efficient Retrieval

TL;DR

PlanGPT, the first specialized Large Language Model tailored for urban and spatial planning, is introduced, which leverages a customized local database retrieval framework, domain-specific fine-tuning of base models, and advanced tooling capabilities.

Abstract

In the field of urban planning, general-purpose large language models often struggle to meet the specific needs of planners. Tasks like generating urban planning texts, retrieving related information, and evaluating planning documents pose unique challenges. To enhance the efficiency of urban professionals and overcome these obstacles, we introduce PlanGPT, the first specialized Large Language Model tailored for urban and spatial planning. Developed through collaborative efforts with institutions like the Chinese Academy of Urban Planning, PlanGPT leverages a customized local database retrieval framework, domain-specific fine-tuning of base models, and advanced tooling capabilities. Empirical tests demonstrate that PlanGPT has achieved advanced performance, delivering responses of superior quality precisely tailored to the intricacies of urban planning.
Paper Structure (42 sections, 1 equation, 5 figures, 9 tables, 1 algorithm)

This paper contains 42 sections, 1 equation, 5 figures, 9 tables, 1 algorithm.

Figures (5)

  • Figure 1: Review task workflow
  • Figure 2: PlanGPT Architecture
  • Figure 3: Urban planning-annotation
  • Figure 4: The t-SNE projection between Plan-Emb and BERT-cse.
  • Figure 5: Assessment Task process