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Backchannel opportunity prediction for social robot listeners

机译:社交机器人听众的反向渠道机会预测

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This paper investigates how a robot that can produce contingent listener response, i.e., backchannel, can deeply engage children as a storyteller. We propose a backchannel opportunity prediction (BOP) model trained from a dataset of children's dyad storytelling and listening activities. Using this dataset, we gain better understanding of what speaker cues children can decode to find backchannel timing, and what type of nonverbal behaviors they produce to indicate engagement status as a listener. Applying our BOP model, we conducted two studies, within- and between-subjects, using our social robot platform, Tega. Behavioral and self-reported analyses from the two studies consistently suggest that children are more engaged with a contingent backchanneling robot listener. Children perceived the contingent robot as more attentive and more interested in their story compared to a non-contingent robot. We find that children significantly gaze more at the contingent robot while storytelling and speak more with higher energy to a contingent robot.
机译:本文研究了一种能够产生听觉上的听众响应(即反向通道)的机器人如何深深地吸引儿童担任讲故事的人。我们提出了从儿童二元组的故事讲述和听力活动的数据集中训练的反向渠道机会预测(BOP)模型。使用此数据集,我们可以更好地理解儿童可以解码哪些说话人提示以找到反向声道时间,以及他们产生何种类型的非语言行为来表示作为听众的参与状态。应用我们的BOP模型,我们使用社交机器人平台Tega进行了两个研究,对象内部和对象之间。两项研究的行为和自我报告的分析一致表明,孩子们更喜欢偶然性的反渠道机器人听众。与非特遣队机器人相比,孩子们觉得特遣队机器人对他们的故事更专心,也更感兴趣。我们发现孩子们在讲故事的时候会更多地注视着特遣队机器人,并以更高的能量向特遣队机器人说话。

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