Action Type induction from multilingual lexical features

Lorenzo Gregori, Rossella Varvara, Andrea Amelio Ravelli
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引用次数: 3

Abstract

This paper presents a vector representation and a clustering of action concepts based on lexical features extracted from IMAGACT, a multilingual and multimodal ontology of actions in which concepts are represented through video prototypes. We computed vectors for 1,010 action concepts, where the dimensions correspond to verbs in 10 languages. Finally, an unsupervised clustering method has been applied on these data in order to discover action classes based on typological closeness. Those clusters are not language-specific or language-biased, and thus constitute an inter-linguistic classification of action domain.
多语言词汇特征的动作类型归纳
本文提出了一种基于从IMAGACT中提取的词汇特征的向量表示和动作概念聚类,IMAGACT是一种多语言和多模态的动作本体,其中概念通过视频原型表示。我们计算了1010个动作概念的向量,其中的维度对应于10种语言中的动词。最后,对这些数据应用无监督聚类方法,基于类型接近度发现动作类。这些集群不是特定于语言或语言偏见的,因此构成了行动领域的跨语言分类。
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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