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Combining Event Semantics and Degree Semantics for Natural Language Inference

机译:结合事件语义和学位语义进行自然语言推断

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In formal semantics, there are two well-developed semantic frameworks: event semantics, which treats verbs and adverbial modifiers using the notion of event, and degree semantics, which analyzes adjectives and comparatives using the notion of degree. However, it is not obvious whether these frameworks can be combined to handle cases in which the phenomena in question are interacting with each other. Here, we study this issue by focusing on natural language inference (NLI). We implement a logic-based NLI system that combines event semantics and degree semantics and their interaction with lexical knowledge. We evaluate the system on various NLI datasets containing linguistically challenging problems. The results show that the system achieves high accuracies on these datasets in comparison with previous logic-based systems and deep-learning-based systems. This suggests that the two semantic frameworks can be combined consistently to handle various combinations of linguistic phenomena without compromising the advantage of either framework.
机译:在形式语义中,有两个发达的语义框架:事件语义,使用事件概念和学位语义来处理动词和状语修饰符,以及使用程度的概念分析形容词和比较。然而,不明显的是这些框架是否可以组合以处理所讨论的现象的情况,其中彼此相互作用。在这里,我们通过专注于自然语言推论(NLI)来研究这个问题。我们实施基于逻辑的NLI系统,该系统将事件语义和学位语义及其与词汇知识的互动组合。我们评估了包含语言挑战性问题的各种NLI数据集的系统。结果表明,与以前的基于逻辑的系统和基于深度学习的系统相比,该系统在这些数据集中实现了高精度。这表明两个语义框架可以一致地组合以处理语言现象的各种组合,而不会影响任一框架的优点。

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