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Computational Investigations of Pragmatic Effects in Natural Language

机译:自然语言务实效应的计算研究

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摘要

Semantics and pragmatics are two complimentary and intertwined aspects of meaning in language. The former is concerned with the literal (context-free) meaning of words and sentences, the latter focuses on the intended meaning, one that is context-dependent. While NLP research has focused in the past mostly on semantics, the goal of this thesis is to develop computational models that leverage this pragmatic knowledge in language that is crucial to performing many NLP tasks correctly. In this proposal, we begin by reviewing the current progress in this thesis, namely, on the tasks of definiteness prediction and adverbial presupposition triggering. Then we discuss the proposed research for the remainder of the thesis which builds on this progress towards the goal of building better and more pragmatically-aware natural language generation and understanding systems.
机译:语义和语用学是语言中含义的两个互补和交织的方面。前者涉及文字(无论如何)的文字和句子的含义,后者侧重于一个是上下文相关的意义。虽然NLP研究主要集中在过去主要在语义上,但本文的目标是开发计算模型,这些模型利用这种语言的语音知识,这是对执行许多NLP任务的语言。在这一提议中,我们首先审查本文的目前的进展,即关于明确预测和状语预设触发的任务。然后,我们讨论了拟议的研究论文的剩余部分,这在这一进步方面朝着建立更好,更加务实的自然语言生成和理解系统的目标。

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