What AI Speaks for Your Community: Polling AI Agents for Public Opinion on Data Center Projects

Fuente: arXiv
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Main Authors: Wu, Zhifeng, Han, Yuelin, Ren, Shaolei
Format: Preprint
Published: 2025
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author Wu, Zhifeng
Han, Yuelin
Ren, Shaolei
author_facet Wu, Zhifeng
Han, Yuelin
Ren, Shaolei
contents The intense computational demands of AI, especially large foundation models, are driving a global boom in data centers. These facilities bring both tangible benefits and potential environmental burdens to local communities. However, the planning processes for data centers often fail to proactively integrate local public opinion in advance, largely because traditional polling is expensive or is conducted too late to influence decisions. To address this gap, we introduce an AI agent polling framework, leveraging large language models to assess community opinion on data centers and guide responsible development of AI. Our experiments reveal water consumption and utility costs as primary concerns, while tax revenue is a key perceived benefit. Furthermore, our cross-model and cross-regional analyses show opinions vary significantly by LLM and regional context. Finally, agent responses show strong topical alignment with real-world survey data. Our framework can serve as a scalable screening tool, enabling developers to integrate community sentiment into early-stage planning for a more informed and socially responsible AI infrastructure deployment.
format Preprint
id arxiv_https___arxiv_org_abs_2511_22037
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle What AI Speaks for Your Community: Polling AI Agents for Public Opinion on Data Center Projects
Wu, Zhifeng
Han, Yuelin
Ren, Shaolei
Computers and Society
The intense computational demands of AI, especially large foundation models, are driving a global boom in data centers. These facilities bring both tangible benefits and potential environmental burdens to local communities. However, the planning processes for data centers often fail to proactively integrate local public opinion in advance, largely because traditional polling is expensive or is conducted too late to influence decisions. To address this gap, we introduce an AI agent polling framework, leveraging large language models to assess community opinion on data centers and guide responsible development of AI. Our experiments reveal water consumption and utility costs as primary concerns, while tax revenue is a key perceived benefit. Furthermore, our cross-model and cross-regional analyses show opinions vary significantly by LLM and regional context. Finally, agent responses show strong topical alignment with real-world survey data. Our framework can serve as a scalable screening tool, enabling developers to integrate community sentiment into early-stage planning for a more informed and socially responsible AI infrastructure deployment.
title What AI Speaks for Your Community: Polling AI Agents for Public Opinion on Data Center Projects
topic Computers and Society
url https://arxiv.org/abs/2511.22037