首页> 美国卫生研究院文献>Journal of the American Medical Informatics Association : JAMIA >A Pilot Study of Contextual UMLS Indexing to Improve the Precision of Concept-based Representation in XML-structured Clinical Radiology Reports
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A Pilot Study of Contextual UMLS Indexing to Improve the Precision of Concept-based Representation in XML-structured Clinical Radiology Reports

机译:对上下文UMLS索引进行试点研究以提高XML结构的临床放射学报告中基于概念的表示的准确性

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摘要

>Objective: Despite the advantages of structured data entry, much of the patient record is still stored as unstructured or semistructured narrative text. The issue of representing clinical document content remains problematic. The authors' prior work using an automated UMLS document indexing system has been encouraging but has been affected by the generally low indexing precision of such systems. In an effort to improve precision, the authors have developed a context-sensitive document indexing model to calculate the optimal subset of UMLS source vocabularies used to index each document section. This pilot study was performed to evaluate the utility of this indexing approach on a set of clinical radiology reports.>Design: A set of clinical radiology reports that had been indexed manually using UMLS concept descriptors was indexed automatically by the SAPHIRE indexing engine. Using the data generated by this process the authors developed a system that simulated indexing, at the document section level, of the same document set using many permutations of a subset of the UMLS constituent vocabularies.>Measurements: The precision and recall scores generated by simulated indexing for each permutation of two or three UMLS constituent vocabularies were determined.>Results: While there was considerable variation in precision and recall values across the different subtypes of radiology reports, the overall effect of this indexing strategy using the best combination of two or three UMLS constituent vocabularies was an improvement in precision without significant impact of recall.>Conclusion: In this pilot study a contextual indexing strategy improved overall precision in a set of clinical radiology reports.
机译:>目标:尽管输入结构化数据有很多优势,但许多患者记录仍存储为非结构化或半结构化的叙述文本。代表临床文件内容的问题仍然存在问题。作者先前使用自动UMLS文档索引系统的工作令人鼓舞,但受到此类系统通常较低的索引精度的影响。为了提高精度,作者开发了上下文相关的文档索引模型,以计算用于索引每个文档部分的UMLS源词汇的最佳子集。进行了这项初步研究,以评估此索引方法在一组临床放射学报告上的实用性。>设计:一组由UMLS概念描述符手动索引的临床放射学报告由FDA自动索引。 SAPHIRE索引引擎。作者使用此过程生成的数据,开发了一个系统,该系统使用UMLS组成词汇的子集的许多排列在同一文档集的文档部分级别上模拟索引。>度量:确定了针对两个或三个UMLS组成词汇的每个排列,通过模拟索引生成的召回得分。>结果:尽管在放射学报告的不同子类型中,准确性和召回值存在很大差异,但总体效果使用两个或三个UMLS组成词汇的最佳组合对这种索引策略进行改进可以提高准确性,而不会显着影响召回率。>结论:在本项试验研究中,上下文索引策略可以提高一组临床放射学报告。

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