Corpus of Multimodal Interaction for Collaborative Planning

Miltiadis Marios Katsakioris, Helen F. Hastie, Ioannis Konstas, A. Laskov
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引用次数: 4

Abstract

As autonomous systems become more commonplace, we need a way to easily and naturally communicate to them our goals and collaboratively come up with a plan on how to achieve these goals. To this end, we conducted a Wizard of Oz study to gather data and investigate the way operators would collaboratively make plans via a conversational ‘planning assistant’ for remote autonomous systems. We present here a corpus of 22 dialogs from expert operators, which can be used to train such a system. Data analysis shows that multimodality is key to successful interaction, measured both quantitatively and qualitatively via user feedback.
协同规划的多模态交互语料库
随着自主系统变得越来越普遍,我们需要一种简单而自然的方式与它们沟通我们的目标,并共同制定实现这些目标的计划。为此,我们进行了一项绿野仙踪(Wizard of Oz)研究,收集数据,并调查运营商如何通过对话式“规划助手”为远程自主系统协同制定计划。我们在这里提供了一个来自专家操作员的22个对话的语料库,它可以用来训练这样的系统。数据分析表明,多模态是成功互动的关键,可以通过用户反馈进行定量和定性测量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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