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A Simple Word Embedding Model for Lexical Substitution

机译:词汇替代的简单词嵌入模型

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The lexical substitution task requires identifying meaning-preserving substitutes for a target word instance in a given sentential context. Since its introduction in SemEval-2007, various models addressed this challenge, mostly in an unsupervised setting. In this work we propose a simple model for lexical substitution, which is based on the popular skip-gram word embedding model. The novelty of our approach is in leveraging explicitly the context embeddings generated within the skip-gram model, which were so far considered only as an internal component of the learning process. Our model is efficient, very simple to implement, and at the same time achieves state-of-the-art results on lexical substitution tasks in an unsupervised setting.
机译:词汇替换任务需要在给定的句子上下文中识别目标Word实例的意义保留替代品。自2007年Semeval-2007的介绍以来,各种车型解决了这一挑战,主要是在无人监督的环境中。在这项工作中,我们提出了一个简单的词汇替代模型,这是基于流行的跳过词嵌入模型。我们的方法的新颖性在于明确地利用了Skip-Gram模型中产生的上下文嵌入,这是远远被认为仅作为学习过程的内部组成部分。我们的模型是高效的,实现非常简单,同时在无监督的环境中实现最新的结果,导致词汇替换任务。

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