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Can we use automated approaches to measure the quality of online political discussion? How to (not) measure interactivity, diversity, rationality, and incivility in online comments to the news

  • Sjoerd B. Stolwijk
  • , Mark Boukes*
  • , Wang Ngai Yeung
  • , Yufang Liao
  • , Simon Münker
  • , Anne C. Kroon
  • , Damian Trilling
  • *Corresponding author for this work

Research output: Contribution to JournalArticleAcademicpeer-review

Abstract

This article explores the (in)ability of automated tools to measure the deliberative quality of online user comments along the standards set out by Habermas: interactivity, diversity, rationality, and (in)civility. Utilizing a stratified sample of manually coded comments (n = 3,862) responding to news videos on YouTube and Twitter, we examined the performance of rule-based measures (i.e. dictionaries), machine-learning classifiers (conventional and transformer-based) and measurements by generative AI (Llama 3.1, GPT-4o, GPT-4T). We present results for over 50 metrics side-by-side to judge the opportunity costs of choosing one method over another. The results revealed strong variation across different groups of models. Overall, our expectation that more modern methods (transformers and generative AI) outperform the older, simpler ones was confirmed. However, the absolute differences between these model groups strongly depended on the measured concept, and we observed strong variance in performance among models of the same group. We provide recommendations for future research that balance ease of use with the performance of automated measurements, along with important cautions to consider.

Original languageEnglish
Pages (from-to)1-25
Number of pages25
JournalCommunication Methods and Measures
Volume20
Issue number1
Early online date12 Sept 2025
DOIs
Publication statusPublished - 2026

Bibliographical note

Publisher Copyright:
© 2025 The Author(s). Published with license by Taylor & Francis Group, LLC.

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