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Description and Results of the SuperSense Tagging Task

机译:SuperSense标记任务的描述和结果

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SuperSense tagging (SST) is a Natural Language Processing task that consists in annotating each significant entity in a text, like nouns, verbs, adjectives and adverbs, according to a general semantic taxonomy defined by the WordNet lexicographer classes (called SuperSenses). SST can be considered as a task half-way between Named-Entity Recognition (NER) and Word Sense Disambiguation (WSD): it is an extension of NER, since it uses a larger set of semantic categories, and it is an easier and more practical task with respect to WSD, that deals with very specific senses. We will report on the organization and results of the Evalita 2011 SuperSense Tagging task.
机译:SuperSense标记(SST)是一种自然语言处理任务,其中包括根据WordNet词典编辑器类定义的一般语义分类法(称为SuperSenses)对文本中的每个重要实体(如名词,动词,形容词和副词)进行注释。 SST可以被视为介于命名实体识别(NER)和词义消除歧义(WSD)之间的任务:它是NER的扩展,因为它使用了较大的语义类别集,并且更容易使用,而且功能更多与水务署有关的实际任务,涉及非常具体的意义。我们将报告Evalita 2011 SuperSense标记任务的组织和结果。

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