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A Type-coherent, Expressive Representation as an Initial Step to Language Understanding

机译:类型连贯的表达形式,作为理解语言的第一步

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A growing interest in tasks involving language understanding by the NLP community has led to the need for effective semantic parsing and inference. Modern NLP systems use semantic representations that do not quite fulfill the nuanced needs for language understanding: adequately modeling language semantics, enabling general inferences, and being accurately recoverable. This document describes undcrspecificd logical forms (ULF) for Episodic Logic (EL), which is an initial form for a semantic representation that balances these needs. ULFs fully resolve the semantic type structure while leaving issues such as quantifier scope, word sense, and anaphora unresolved; they provide a starting point for further resolution into EL, and enable certain structural inferences without further resolution. This document also presents preliminary results of creating a hand-annotated corpus of ULFs for the purpose of training a precise ULF parser, showing a three-person pairwise interannota-tor agreement of 0.88 on confident annotations. We hypothesize that a divide-and-conquer approach to semantic parsing starting with derivation of ULFs will lead to semantic analyses that do justice to subtle aspects of linguistic meaning, and will enable construction of more accurate semantic parsers.
机译:NLP社区对涉及语言理解的任务越来越感兴趣,这导致需要有效的语义解析和推断。现代的NLP系统使用的语义表示不能完全满足语言理解的细微需求:对语言语义进行适当建模,启用一般推理并可以准确地恢复。本文档介绍了情节逻辑(EL)的非特定逻辑形式(ULF),这是用于平衡这些需求的语义表示形式的初始形式。 ULF完全解决了语义类型结构,而未解决诸如量词范围,词义和回指等问题;它们提供了进一步解析为EL的起点,并且无需进一步解析就可以进行某些结构推断。本文档还介绍了为训练精确的ULF解析器而创建的手动注释的ULF语料库的初步结果,该结果显示在自信注解上三人成对的人际同意率为0.88。我们假设,从ULF的派生开始,采用分而治之的语义分析方法将导致语义分析对语言含义的微妙方面做出公正的判断,并能够构建更准确的语义解析器。

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