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The Effects of Cognitive Biases in Long- Term Human-Robot Interactions: Case Studies Using Three Cognitive Biases on MARC the Humanoid Robot

机译:认知偏差在长期人机交互中的作用:使用三种认知偏差对类人机器人MARC的案例研究

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The research presented in this paper is part of a wider study investigating the role cognitive bias plays in developing long-term companionship between a robot and human. In this paper we discuss, how cognitive biases such as misattribution, Empathy gap and Dunning-Kruger effects can play a role in robot-human interaction with the aim of improving long-term companionship. One of the robots used in this study called MARC (See Fig. 1) was given a series of biased behaviours such as forgetting participant's names, denying its own faults for failures, unable to understand what a participant is saying, etc. Such fallible behaviours were compared to a non-biased baseline behaviour. In the current paper, we present a comparison of two case studies using these biases and a non-biased algorithm. It is hoped that such humanlike fallible characteristics can help in developing a more natural and believable companionship between Robots and Humans. The results of the current experiments show that the participants initially wanned to the robot with the biased behaviours.
机译:本文提出的研究是一项更广泛研究的一部分,该研究调查认知偏差在发展机器人与人类之间的长期伙伴关系中的作用。在本文中,我们讨论了诸如归因失误,移情差距和Dunning-Kruger效应等认知偏见如何在机器人与人的互动中发挥作用,以期改善长期陪伴。在这项研究中使用的一个名为MARC的机器人(见图1)被赋予了一系列偏见的行为,例如忘记参与者的名字,否认自己的失败是错误的,无法理解参与者在说什么等等。与无偏向基线行为进行比较。在当前的论文中,我们对使用这些偏差和非偏差算法的两个案例研究进行了比较。希望这种类似人类的易错特性可以帮助在机器人与人类之间建立更自然,更可信的伙伴关系。当前实验的结果表明,参与者最初以偏见的行为转向了机器人。

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