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A Framework to Generate Sets of Terms from Large Scale Medical Vocabularies for Natural Language Processing

机译:从大规模医学词汇中生成用于自然语言处理的术语集的框架

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In this paper we present our ongoing work on integrating large-scale terminological information into NLP tools. We focus on the problem of selecting and generating a set of suitable terms from the resources, based on deletion, modification and addition rules. We propose a general framework in which the raw data of the resources are first loaded into a knowledge base (KB). The selection and generation rules are then defined in a declarative way using query templates in the query language of the KB system. We illustrate the use of this framework to select and generate term sets from a UMLS dataset.
机译:在本文中,我们介绍了将大规模术语信息集成到NLP工具中的正在进行的工作。我们关注基于删除,修改和添加规则从资源中选择并生成一组合适术语的问题。我们提出了一个通用框架,其中首先将资源的原始数据加载到知识库(KB)中。然后,使用KB系统的查询语言中的查询模板以声明方式定义选择和生成规则。我们说明了如何使用此框架从UMLS数据集中选择和生成术语集。

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