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Automatic extraction of PIOPED interpretations from ventilation/perfusion lung scan reports.

机译:从通气/灌注肺扫描报告中自动提取PIOPED解释。

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摘要

Free-text documents are the main type of data produced by a radiology department in a hospital information system. While this type of data is readily accessible for clinical data review it can not be accessed by other applications to perform medical decision support, quality assurance, and outcome studies. In an attempt to solve this problem, natural language processing systems have been developed and tested against chest x-rays reports to extract relevant clinical information and make it accessible to other computer applications. We have used a natural language processing tool called SymText to extract relevant clinical information from a different type of radiology report, the Ventilation/Perfusion lung scan report. Results of this effort can be analyzed in terms of precision and recall. The overall precision was 0.88 and recall was 0.92. In addition, the natural language processing system functions differently in reports with and without an impression section. If this type of information can be successfully extracted from radiology reports, one can develop quality monitors for the diagnostic performance of the radiologist by correlating the impressions with gold standard data present in a hospital information system. Avoiding the manual effort previously necessary to create quality assurance data, can lead to a higher frequency of quality review in a radiology department.
机译:自由文本文档是医院信息系统中放射科产生的主要数据类型。尽管此类数据易于访问以进行临床数据审查,但其他应用程序无法访问该数据以执行医学决策支持,质量保证和结果研究。为了解决这个问题,已经开发了自然语言处理系统并针对胸部X光报告进行了测试,以提取相关的临床信息并使其他计算机应用程序可以访问该信息。我们使用了一种称为SymText的自然语言处理工具,从另一种放射学报告(通气/灌注肺扫描报告)中提取相关的临床信息。可以根据准确性和召回率来分析这项工作的结果。总体精度为0.88,召回率为0.92。此外,自然语言处理系统在带有和不带有印象部分的报表中的功能有所不同。如果可以从放射学报告中成功提取此类信息,则可以通过将印模与医院信息系统中存在的黄金标准数据相关联,来开发用于放射科医生诊断性能的质量监控器。避免以前创建质量保证数据所需的手动工作,可以导致放射科中更高质量的检查频率。

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