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An approach to mental image based understanding of natural language: Focused on static and dynamic spatial relations

机译:基于心理图像的自然语言理解方法:专注于静态和动态空间关系

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It must be rather difficult for ordinary people to communicate with robots using special technical languages. Therefore, it must be more desirable for them to use natural language (NL) for such a purpose because it is the most conventional among them. This work proposes a methodology for natural language understanding through an AI system named Conversation Management System (CMS) based on Mental Image Directed Semantic Theory proposed by M. Yokota. CMS is intended to enable a robot to understand NL in the same way as people do, and actually can reach the most plausible semantic interpretation of an input text and return desirable outcomes by employing word concepts, postulates, and inference rules. Recently, the authors have applied several spatial terms in English language, for example verbs, prepositions (e.g. between, along, left, right, and so on). We found that the methodology is outstanding from conventional approaches with the attempt to provide robots understand NL based on mental image model. This paper focuses on how CMS understands static spatial (3D) relations expressed in NL.
机译:对于普通人来说,使用特殊的技术语言与机器人进行交流必须相当困难。因此,对于他们来说,使用自然语言(NL)来实现这一目的是非常必要的,因为这是其中最传统的做法。这项工作提出了一种基于名为M. Yokota的心理图像定向语义理论的,通过名为对话管理系统(CMS)的AI系统进行自然语言理解的方法。 CMS旨在使机器人能够像人们一样理解NL,并且实际上可以通过采用单词概念,假设和推理规则来对输入文本进行最合理的语义解释,并返回理想的结果。最近,作者已经用英语应用了几个空间术语,例如动词,介词(例如,在之间,沿左右,在左,在右等)。我们发现,该方法与传统方法相比非常出色,试图为机器人提供基于心理图像模型的NL理解。本文重点介绍CMS如何理解以NL表示的静态空间(3D)关系。

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