Engineering an Aligned Gold-Standard Corpus of Human to Machine Oriented Controlled Natural Language

Hazem Safwat, Brian Davis, Manel Zarrouk
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引用次数: 1

Abstract

Knowledge base creation and population are an essential formal backbone for a variety of intelligent applications, decision support and expert systems and intelligent search. While the abundance of unstructured text helps in easing the knowledge acquisition gap, the ambiguous nature of language tends to impact accuracy when engaging in more complex semantic analysis. Controlled Natural Languages (CNLs) are subsets of natural language that are restricted grammatically in order to reduce or eliminate ambiguity for the purposes of machine processability, or unambiguous human communication within a domain or industry context, such as Simplified English. This type of human-oriented CNL is under-researched despite having found favor within industry over many years. We describe a novel dataset which aligns a representative sample of Simplified English Wikipedia sentences with a well known machine-oriented CNL. This linguistic resource is both human-readable and semantically machine interpretable and can benefit a variety of NLP and knowledge based applications.
工程一个对齐的黄金标准语料库的人到机器导向的受控自然语言
知识库的创建和填充是各种智能应用、决策支持、专家系统和智能搜索的重要形式支柱。虽然大量的非结构化文本有助于缓解知识获取差距,但在进行更复杂的语义分析时,语言的模糊性往往会影响准确性。受控自然语言(cnl)是自然语言的子集,它们在语法上受到限制,以减少或消除机器可处理性的歧义,或在领域或行业上下文中(如简化英语)进行明确的人类交流。尽管这种以人为本的CNL已经在工业界得到了多年的青睐,但研究还不够充分。我们描述了一个新的数据集,它将简化英语维基百科句子的代表性样本与众所周知的面向机器的CNL对齐。这种语言资源是人类可读的和语义机器可解释的,可以受益于各种NLP和基于知识的应用程序。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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