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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?还是我说的话?解释,体现和期望对人机团队信任和绩效的影响

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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:信任对于人机交互的成功至关重要。研究表明,如果人们对机器人的决策过程有准确的了解,他们将更准确地信任机器人。部分可观察的马尔可夫决策过程(POMDP)是这样的决策过程之一,但其定量推理通常对人们是不透明的。当机器人可以学习时,这种缺乏透明度的情况会更加恶化,从而使决策变得更好,但也难以预测。最近的研究显示了通过自动生成基于POMDP的决策的解释来校准人机信任的希望。在这项工作中,我们探索了可能会与这种解释相互作用的因素,从而影响人机团队中的人为决策。我们专注于用不确定性的定量表达进行解释,并尝试使用机器人的常见设计因素:出现错误时的实施方式和通信策略。结果有助于我们确定人与机器人信任关系的宝贵属性和动态。

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