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Can AI Mitigate Human Perceptual Biases? A Pilot Study

Human-Computer Interaction 2023-11-03 v1 Artificial Intelligence

Abstract

We present results from a pilot experiment to measure if machine recommendations can debias human perceptual biases in visualization tasks. We specifically studied the ``pull-down'' effect, i.e., people underestimate the average position of lines, for the task of estimating the ensemble average of data points in line charts. These line charts can show for example temperature or precipitation in 12 months. Six participants estimated ensemble averages with or without an AI assistant. The assistant, when available, responded at three different speeds to assemble the conditions of a human collaborator who may delay his or her responses. Our pilot study showed that participants were faster with AI assistance in ensemble tasks, compared to the baseline without AI assistance. Although ``pull-down'' biases were reduced, the effect of AI assistance was not statistically significant. Also, delaying AI responses had no significant impact on human decision accuracy. We discuss the implications of these preliminary results for subsequent studies.

Keywords

Cite

@article{arxiv.2311.00706,
  title  = {Can AI Mitigate Human Perceptual Biases? A Pilot Study},
  author = {Ross Geuy and Nate Rising and Tiancheng Shi and Meng Ling and Jian Chen},
  journal= {arXiv preprint arXiv:2311.00706},
  year   = {2023}
}

Comments

This paper was accepted IEEE VIS 2023 VISxVISION Workshop

R2 v1 2026-06-28T13:08:52.783Z