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AI Realtor: Towards Grounded Persuasive Language Generation for Automated Copywriting

Author

Listed:
  • Jibang Wu
  • Chenghao Yang
  • Yi Wu
  • Simon Mahns
  • Chaoqi Wang
  • Hao Zhu
  • Fei Fang
  • Haifeng Xu

Abstract

This paper develops an agentic framework that employs large language models (LLMs) for grounded persuasive language generation in automated copywriting, with real estate marketing as a focal application. Our method is designed to align the generated content with user preferences while highlighting useful factual attributes. This agent consists of three key modules: (1) Grounding Module, mimicking expert human behavior to predict marketable features; (2) Personalization Module, aligning content with user preferences; (3) Marketing Module, ensuring factual accuracy and the inclusion of localized features. We conduct systematic human-subject experiments in the domain of real estate marketing, with a focus group of potential house buyers. The results demonstrate that marketing descriptions generated by our approach are preferred over those written by human experts by a clear margin while maintaining the same level of factual accuracy. Our findings suggest a promising agentic approach to automate large-scale targeted copywriting while ensuring factuality of content generation.

Suggested Citation

  • Jibang Wu & Chenghao Yang & Yi Wu & Simon Mahns & Chaoqi Wang & Hao Zhu & Fei Fang & Haifeng Xu, 2025. "AI Realtor: Towards Grounded Persuasive Language Generation for Automated Copywriting," Papers 2502.16810, arXiv.org, revised Oct 2025.
  • Handle: RePEc:arx:papers:2502.16810
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    References listed on IDEAS

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