Interactive Design by Integrating a Large Pre-Trained Language Model and Building Information Modeling

Jang, Suhyung, Lee, Ghang

arXiv.org Artificial Intelligence 

Email: glee@yonsei.ac.kr ABSTRACT This study explores the potential of generative artificial intelligence (AI) models, specifically OpenAI's generative pre-trained transformer (GPT) series, when integrated with building information modeling (BIM) tools as an interactive design assistant for architectural design. The research involves the development and implementation of three key components: 1) BIM2XML, a component that translates BIM data into extensible markup language (XML) format; 2) Generative AI-enabled Interactive Architectural design (GAIA), a component that refines the input design in XML by identifying designer intent, relevant objects, and their attributes, using pretrained language models; and 3) XML2BIM, a component that converts AI-generated XML data back into a BIM tool. This study validated the proposed approach through a case study involving design detailing, using the GPT series and Revit. Our findings demonstrate the effectiveness of state-of-the-art language models in facilitating dynamic collaboration between architects and AI systems, highlighting the potential for further advancements. INTRODUCTION The architectural design process is complex, demanding the incorporation of diverse ideas, constraints, and stakeholders to produce innovative and functional solutions.

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