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A knowledge-based approach for retrieving scenario-specific medical text documents

机译:一种基于知识的方法来检索针对特定情况的医学文本文档

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Medical free-text queries often share the same scenario. A scenario represents a repeating task in healthcare. For example, a specific scenario is searching for treatment methods for a specific disease, where "treatment" is a term indicating the scenario. To support scenario-specific retrieval, in this paper we present a new knowledge-based approach to address these problems. In addition, we describe a testbed system developed using the approach. Our specific implementation uses the UMLS Metathesaurus and semantic structure to extract key concepts from a free text. The approach uses phrase-based indexing to represent similar concepts, and query expansion to improve matching query terms with the terms in the document. The system formulates the query based on the user's input and the selected scenario template such as "disease, treatment" or "disease, diagnosis." Thus, it is able to retrieve documents relevant to the specific scenario. Evaluating the system using the standard OSHMED corpus, our empirical results validate the effectiveness of this new approach over the traditional text retrieval techniques.
机译:医学自由文本查询通常具有相同的情况。场景代表医疗保健中的重复任务。例如,特定场景正在搜索特定疾病的治疗方法,其中“治疗”是指示该场景的术语。为了支持特定于场景的检索,在本文中,我们提出了一种新的基于知识的方法来解决这些问题。另外,我们描述了使用该方法开发的测试平台系统。我们的特定实现使用UMLS元同义词库和语义结构从自由文本中提取关键概念。该方法使用基于短语的索引来表示相似的概念,并使用查询扩展来改进与文档中的术语匹配的查询词。系统根据用户的输入和所选的方案模板(例如“疾病,治疗”或“疾病,诊断”)来制定查询。因此,它能够检索与特定方案有关的文档。使用标准的OSHMED语料库对系统进行评估,我们的经验结果验证了这种新方法优于传统文本检索技术的有效性。

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