ImageSchemaNet: A knowledge graph for embodied commonsense knowledge

Semantic Web Pub Date : 2024-08-08 DOI:10.3233/sw-243084
Stefano De Giorgis, Aldo Gangemi, Dagmar Gromann
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Abstract

Commonsense knowledge is a broad and challenging area of research which investigates our understanding of the world as well as human assumptions about reality. Deriving directly from the subjective perception of the external world, it is intrinsically intertwined with embodied cognition. Commonsense reasoning is linked to human sense-making, pattern recognition and knowledge framing abilities. This work presents a new resource that formalizes the cognitive theory of image schemas. Image schemas are dynamic conceptual building blocks originating from our sensorimotor interactions with the physical world, and enable our sense-making cognitive activity to assign coherence and structure to entities, events and situations we experience everyday. ImageSchemaNet is an ontology that aligns pre-existing resources, such as FrameNet, VerbNet, WordNet and MetaNet from the Framester hub, to image schema theory. This article describes an empirical application of ImageSchemaNet, combined with semantic parsers, on the task of annotating natural language sentences with image schemas.
ImageSchemaNet:体现常识性知识的知识图谱
常识是一个广泛而富有挑战性的研究领域,它研究我们对世界的理解以及人类对现实的假设。常识直接来源于对外部世界的主观感知,与具身认知有着内在联系。常识推理与人类的感官制造、模式识别和知识框架能力息息相关。这项工作提供了一种新的资源,将图像图式的认知理论形式化。图像图式是动态的概念构件,源于我们与物理世界的感觉运动互动,使我们的感知认知活动能够为我们日常经历的实体、事件和情境赋予一致性和结构性。ImageSchemaNet是一种本体论,它将已有的资源(如Framester中心的FrameNet、VerbNet、WordNet和MetaNet)与图像模式理论结合起来。本文介绍了 ImageSchemaNet 与语义分析器相结合在用图像模式注释自然语言句子任务中的经验应用。
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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