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AI makes you smarter but none the wiser: The disconnect between performance and metacognition

  • Daniela Fernandes*
  • , Steeven Villa
  • , Salla Nicholls
  • , Otso Haavisto
  • , Daniel Buschek
  • , Albrecht Schmidt
  • , Thomas Kosch
  • , Chenxinran Shen
  • , Robin Welsch
  • *Corresponding author for this work
  • Ludwig Maximilian University of Munich
  • University of Bayreuth
  • Humboldt-Universität zu Berlin

Research output: Contribution to journalArticleScientificpeer-review

26 Citations (Scopus)
98 Downloads (Pure)

Abstract

Optimizing human–AI interaction requires users to reflect on their performance critically, yet little is known about generative AI systems’ effect on users’ metacognitive judgments. In two large-scale studies, we investigate how AI usage is associated with users’ metacognitive monitoring and performance in logical reasoning tasks. Specifically, our paper examines whether people using AI to complete tasks can accurately monitor how well they perform. In Study 1, participants (N = 246) used AI to solve 20 logical reasoning problems from the Law School Admission Test. While their task performance improved by three points compared to a norm population, participants overestimated their task performance by four points. Interestingly, higher AI literacy correlated with lower metacognitive accuracy, suggesting that those with more technical knowledge of AI were more confident but less precise in judging their own performance. Using a computational model, we explored individual differences in metacognitive accuracy and found that the Dunning–Kruger effect, usually observed in this task, ceased to exist with AI use. Study 2 (N = 452) replicates these findings. We discuss how AI levels cognitive and metacognitive performance in human–AI interaction and consider the consequences of performance overestimation for designing interactive AI systems that foster accurate self-monitoring, avoid overreliance, and enhance cognitive performance.

Original languageEnglish
Article number108779
JournalComputers in Human Behavior
Volume175
Early online date27 Oct 2025
DOIs
Publication statusPublished - Feb 2026
MoE publication typeA1 Journal article-refereed

Funding

This work was supported by The Finnish Doctoral Program Network in Artificial Intelligence, Finland, AI-DOC [decision number VN/3137/2024-OKM-6 ]; This work relates to the upcoming ERC project AmplifAI (grant agreement No. 101217557).

Keywords

  • Generative AI
  • Human-centered computing
  • Human–AI interaction
  • Metacognition
  • Overconfidence

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