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Graded hyponymy for compositional distributional semantics

机译:成分分布语义的分级下位

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The categorical compositional distributional model of natural language provides a conceptually motivated procedure to compute the meaning of a sentence, given its grammatical structure and the meanings of its words. This approach has outperformed other models in mainstream empirical language processing tasks, but lacks an effective model of lexical entailment. We address this shortcoming by exploiting the freedom in our abstract categorical framework to change our choice of semantic model. This allows us to describe hyponymy as a graded order on meanings, using models of partial information used in quantum computation. Quantum logic embeds in this graded order.
机译:自然语言的分类组成分布模型提供了一个概念上有动机的程序,可以根据句子的语法结构和单词的含义来计算句子的含义。在主流经验语言处理任务中,这种方法的性能优于其他模型,但是缺少有效的词汇蕴涵模型。我们通过利用抽象分类框架中的自由来更改语义模型的选择来解决此缺陷。这使我们能够使用量子计算中使用的部分信息模型将下位义描述为意义的等级顺序。量子逻辑按此分级顺序嵌入。

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