Unsupervised Mapping of Arguments of Deverbal Nouns to Their Corresponding Verbal Labels

A. Weinstein, Yoav Goldberg
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Abstract

Deverbal nouns are nominal forms of verbs commonly used in written English texts to describe events or actions, as well as their arguments. However, many NLP systems, and in particular pattern-based ones, neglect to handle such nominalized constructions. The solutions that do exist for handling arguments of nominalized constructions are based on semantic annotation and require semantic ontologies, making their applications restricted to a small set of nouns. We propose to adopt instead a more syntactic approach, which maps the arguments of deverbal nouns to the universal-dependency relations of the corresponding verbal construction. We present an unsupervised mechanism -- based on contextualized word representations -- which allows to enrich universal-dependency trees with dependency arcs denoting arguments of deverbal nouns, using the same labels as the corresponding verbal cases. By sharing the same label set as in the verbal case, patterns that were developed for verbs can be applied without modification but with high accuracy also to the nominal constructions.
述义名词论元到相应词性标签的无监督映射
口头名词是动词的名义形式,通常用于书面英语文本中描述事件或动作,以及它们的论点。然而,许多NLP系统,特别是基于模式的NLP系统,忽略了处理这种名词化结构。处理名词化结构参数的现有解决方案是基于语义注释的,并且需要语义本体,这使得它们的应用仅限于一小部分名词。我们建议采用一种更符合句法的方法,将指示名词的论点映射到相应动词结构的普遍依赖关系。我们提出了一种无监督的机制——基于上下文化的词表示——它允许用表示指示性名词的参数的依赖弧来丰富通用依赖树,使用与相应的动词用例相同的标签。通过与动词情况共享相同的标签集,为动词开发的模式可以不加修饰地应用于名义结构,但也具有很高的准确性。
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