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Automation reliability and trust: A Bayesian inference approach

机译:自动化可靠性和信任:贝叶斯推理方法

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Research shows that over repeated interactions with automation, human operators are able to learn how reliable the automation is and update their trust in automation. The goal of the present study is to investigate if this learning and inference process approximately follow the principle of Bayesian probabilistic inference. First, we applied Bayesian inference to estimate human operators’ perceived system reliability and found high correlations between the Bayesian estimates and the perceived reliability for the majority of the participants. We then correlated the Bayesian estimates with human operators’ reported trust and found moderate correlations for a large portion of the participants. Our results suggest that human operators’ learning and inference process for automation reliability can be approximated by Bayesian inference.
机译:研究表明,通过重复与自动化的交互,人类运营商能够了解自动化是多么可靠,并更新他们对自动化的信任。本研究的目标是调查这种学习和推理过程是否遵循贝叶斯概率推理的原则。首先,我们应用贝叶斯推论来估计人类经营者的感知系统可靠性,并发现贝叶斯估计与大多数参与者的可靠性之间的高相关性。然后,我们将贝叶斯估计与人类经营者报告的信任相关,并发现大部分参与者的中等相关性。我们的结果表明,人工运营商的自动化可靠性的学习和推理过程可以通过贝叶斯推断来近似。

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