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Is It My Looks? Or Something I Said? The Impact of Explanations, Embodiment, and Expectations on Trust and Performance in Human-Robot Teams

机译:是我的样子吗?或者我说的话?解释,实施例和期望对人体机器人团队中的信任和表现的影响

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Trust is critical to the success of human-robot interaction. Research has shown that people will more accurately trust a robot if they have an accurate understanding of its decision-making process. The Partially Observable Markov Decision Process (POMDP) is one such decision-making process, but its quantitative reasoning is typically opaque to people. This lack of transparency is exacerbated when a robot can learn, making its decision making better, but also less predictable. Recent research has shown promise in calibrating human-robot trust by automatically generating explanations of POMDP-based decisions. In this work, we explore factors that can potentially interact with such explanations in influencing human decision-making in human-robot teams. We focus on explanations with quantitative expressions of uncertainty and experiment with common design factors of a robot: its embodiment and its communication strategy in case of an error. Results help us identify valuable properties and dynamics of the human-robot trust relationship.
机译:信任对人机互动成功至关重要。研究表明,如果人们对其决策过程准确了解,人们更准确地信任机器人。部分观察到的马尔可夫决策过程(POMDP)是一种这样的决策过程,但其定量推理通常对人不透明。当机器人可以学习时,这种缺乏透明度加剧了,使其决策更好,但也不太可预测。最近的研究表明,通过自动生成基于POMDP的决策的解释,在校准人机信任方面已经证明了承诺。在这项工作中,我们探讨了可能与影响人体机器人团队影响人类决策的这种解释可能互动的因素。我们专注于对具有机器人的共同设计因素的不确定性和实验的解释:其实施例及其在错误的情况下的通信策略。结果帮助我们确定人机信任关系的宝贵物业和动态。

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