Enabling robots to understand indirect speech acts in task-based interactions

Gordon Briggs, T. Williams, Matthias Scheutz
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引用次数: 35

Abstract

An important open problem for enabling truly taskable robots is the lack of task-general natural language mechanisms within cognitive robot architectures that enable robots to understand typical forms of human directives and generate appropriate responses. In this paper, we first provide experimental evidence that humans tend to phrase their directives to robots indirectly, especially in socially conventionalized contexts. We then introduce pragmatic and dialogue-based mechanisms to infer intended meanings from such indirect speech acts and demonstrate that these mechanisms can handle all indirect speech acts found in our experiment as well as other common forms of requests.
使机器人能够理解基于任务的交互中的间接言语行为
实现真正可执行任务的机器人的一个重要开放问题是,认知机器人架构中缺乏任务通用自然语言机制,使机器人能够理解人类指令的典型形式并产生适当的响应。在这篇论文中,我们首先提供了实验证据,证明人类倾向于间接地向机器人表达指令,尤其是在社会惯例化的背景下。然后,我们引入了语用和基于对话的机制来从这些间接言语行为中推断意图含义,并证明这些机制可以处理我们实验中发现的所有间接言语行为以及其他常见形式的请求。
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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