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首页> 外文期刊>Journal of the American Medical Informatics Association : >Extracting timing and status descriptors for colonoscopy testing from electronic medical records.
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Extracting timing and status descriptors for colonoscopy testing from electronic medical records.

机译:从电子病历中提取用于结肠镜检查的时间和状态描述符。

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Colorectal cancer (CRC) screening rates are low despite confirmed benefits. The authors investigated the use of natural language processing (NLP) to identify previous colonoscopy screening in electronic records from a random sample of 200 patients at least 50 years old. The authors developed algorithms to recognize temporal expressions and 'status indicators', such as 'patient refused', or 'test scheduled'. The new methods were added to the existing KnowledgeMap concept identifier system, and the resulting system was used to parse electronic medical records (EMR) to detect completed colonoscopies. Using as the 'gold standard' expert physicians' manual review of EMR notes, the system identified timing references with a recall of 0.91 and precision of 0.95, colonoscopy status indicators with a recall of 0.82 and precision of 0.95, and references to actually completed colonoscopies with recall of 0.93 and precision of 0.95. The system was superior to using colonoscopy billing codes alone. Health services researchers and clinicians may find NLP a useful adjunct to traditional methods to detect CRC screening status. Further investigations must validate extension of NLP approaches for other types of CRC screening applications.
机译:尽管已证实有益处,但结直肠癌(CRC)筛查率仍然很低。作者调查了自然语言处理(NLP)的使用,以从200名至少50岁的患者的随机样本中识别以前在电子记录中进行的结肠镜检查。作者开发了识别时间表达和“状态指标”的算法,例如“患者拒绝”或“预定考试”。新方法已添加到现有的KnowledgeMap概念标识符系统中,并且所得系统用于解析电子病历(EMR)以检测完成的结肠镜检查。作为“黄金标准”专家医师对EMR笔记的手动审查,系统识别了具有0.91的召回率和0.95的精度的定时参考,具有0.82的召回率和0.95的精度的结肠镜检查状态指标以及对实际完成的结肠镜检查的引用召回率为0.93,精度为0.95。该系统优于单独使用结肠镜检查计费代码。卫生服务研究人员和临床医生可能会发现NLP是检测CRC筛查状态的传统方法的有用辅助方法。进一步的研究必须验证NLP方法在其他类型的CRC筛查应用中的扩展。

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