论文标题

Alexa作为活跃的听众:回音如何引起自我披露并促进用户体验

Alexa as an Active Listener: How Backchanneling Can Elicit Self-Disclosure and Promote User Experience

论文作者

Cho, Eugene, Motalebi, Nasim, Sundar, S. Shyam, Abdullah, Saeed

论文摘要

主动聆听是人类交流中的一项知名技能,以建立亲密关系并引起自我披露,以支持各种合作任务。当应用于对话性UI时,通过向用户发出声明他们正在听到的声明,可以从机器上进行积极的聆听,这可能会产生积极的结果。但是,鉴于需要个性化主动上关注的线索及其特定的话语,因此需要大量的工程工作和培训才能大规模地嵌入机器中的积极聆听技能。考虑到对话剂的使用越来越多,尤其是社会孤立的个体数量越来越多,就需要一种更通用的解决方案。考虑到这一点,我们开发了一种Amazon Alexa技能,该技能提供了保护隐私和伪随机的后渠道,以表明积极的聆听。用户研究(n = 40)的数据表明,回音扬声器提高了智能扬声器的主动聆听程度。这也会导致更多的情感披露,参与者使用更多积极的话语。将智能扬声器作为主动听众的感知与感知的情感支持呈正相关。访谈数据证实了使用智能扬声器提供情感支持的可行性。这些发现对合作工作和社交计算的几个领域中的智能扬声器互动设计具有重要意义。

Active listening is a well-known skill applied in human communication to build intimacy and elicit self-disclosure to support a wide variety of cooperative tasks. When applied to conversational UIs, active listening from machines can also elicit greater self-disclosure by signaling to the users that they are being heard, which can have positive outcomes. However, it takes considerable engineering effort and training to embed active listening skills in machines at scale, given the need to personalize active-listening cues to individual users and their specific utterances. A more generic solution is needed given the increasing use of conversational agents, especially by the growing number of socially isolated individuals. With this in mind, we developed an Amazon Alexa skill that provides privacy-preserving and pseudo-random backchanneling to indicate active listening. User study (N = 40) data show that backchanneling improves perceived degree of active listening by smart speakers. It also results in more emotional disclosure, with participants using more positive words. Perception of smart speakers as active listeners is positively associated with perceived emotional support. Interview data corroborate the feasibility of using smart speakers to provide emotional support. These findings have important implications for smart speaker interaction design in several domains of cooperative work and social computing.

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