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Eliciting Conversation in Robot Vehicle Interactions

机译:引发机器人车间的谈话

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Dialog between drivers and speech-based robot vehicle interfaces can be used as an instrument to find out what drivers might be concerned, confused or curious about in driving simulator studies. Eliciting ongoing conversation with drivers about topics that go beyond navigation, control of entertainment systems, or other traditional driving related tasks is important to getting drivers to engage with the activity in an open-ended fashion. In a structured improvisational Wizard of Oz study that took place in a highly immersive driving simulator, we engaged participant drivers (N=6) in an autonomous driving course where the vehicle spoke to drivers using computer-generated natural language speech. First, using microanalyses of drivers' responses to the car's utterances, we identify a set of topics that are expected and treated as appropriate by the participants in our study. Second, we identify a set of topics and conversational strategies that are treated as inappropriate. Third, we show that it is just these unexpected, inappropriate utterances that eventually increase users' trust into the system, make them more at ease, and raise the system's acceptability as a communication partner.
机译:驱动程序与基于语音的机器人车辆接口之间的对话可以用作仪器,以了解可能对驾驶模拟器研究中可能涉及的驱动因素,困惑或好奇。引发与关于超越导航,娱乐系统或其他传统驾驶相关任务的主题的司机的持续谈话对于让驾驶员以开放式时尚的活动与活动互动是很重要的。在一个结构化的oz学习的改进向导中发生在高度沉浸式驾驶模拟器中,我们将参与者驱动程序(n = 6)从事使用计算机生成的自然语言语音的车辆与驱动程序交谈的自主驾驶课程中。首先,使用司机的微观答案对汽车的话语,我们确定了一系列预期的主题,并在我们的研究中适当地对待。其次,我们确定了一系列被视为不恰当的主题和会话策略。第三,我们表明它只是这些意外,最终提高了用户对系统的信任的不恰当的话语,让它们更加轻松,并提高系统作为通信伙伴的可接受性。

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