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Simulating human responses to environmental messaging

delete2026-01-21
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OA
AI
I
Ian Drumm *
A
Atefeh Tate
DOI:10.1007/s42001-025-00453-0delete
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Abstract

Abstract

En 中文
This paper presents ongoing work to implement and evaluate virtual humans whose responses to environmental messaging are shaped by their media diets and social interactions. The project scraped thousands of social media post-comment pairs related to environmental issues, classified them by viewpoint through the large-scale orchestration of multiple instances of large language models, and built a vector database of embedded interactions with associated classification metadata to serve as a knowledge source for a chatbot. Dynamic, metadata-based filtering of this knowledge source, in conjunction with retrieval-augmented generation, enabled a chatbot with selectable personas that generate responses to new social media posts based on stereotypical viewpoints grounded in current news, attitudes and zeitgeists. A qualitative and quantitative evaluation was conducted to demonstrate the validity of the approach, though its full potential remains to be explored.
Keywords:
Climate
AI chatbots
Political discourse simulation
Computational social science

Journal

J
Journal of Computational Social Science
IF:
2.3
Papers:
46
Citations:
0

Organization

U
university of salford
Scholars:
454
Papers: 270
Citations: 0