Article
Inferring the Public Mind: Accuracy and Biases in Out-of-Sample Public Opinion Estimation with Large Language Models
2025-11-13
Abstract excerpt
<p>The emergence of large language models (LLMs) offers a promising cost-effective alternative for assessing public opinion. However, most prior research has focused on simulating individual personas using past surveys, leaving it unclear whether LLMs can accurately estimate out-of-sample public opinion at the societal level. We address this gap with three studies that systematically evaluate the accuracy, bias, a...
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Identifiers and source
- Literature Corpus work
- 81297800-036a-5c39-a132-ff58927bf69a
- DOI
- 10.31234/osf.io/3g2tu_v3
