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Nationwide validation study of diagnostic algorithms for inflammatory bowel disease in Korean National Health Insurance Service database

机译:韩国国家健康保险服务数据库肿瘤疾病诊断算法的全国验证研究

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摘要

Background and Aim We conducted a nationwide validation study of diagnostic algorithms to identify cases of inflammatory bowel disease (IBD) within the Korea National Health Insurance System (NHIS) database. Method Using the NHIS dataset, we developed 44 algorithms combining the International Classification of Diseases (ICD)-10 codes, codes for Rare and Intractable Diseases (RID) registration and claims data for health care encounters, and pharmaceutical prescriptions for IBD-specific drugs. For each algorithm, we compared the case identification results from electronic medical records data with the gold standard (chart-based diagnosis). A multiple sampling test verified the validation results from the entire study population. Results A random nationwide sample of 1697 patients (848 potential cases and 849 negative control cases) from 17 hospitals were included for validation. A combination of the ICD-10 code, >= 1 claims for health care encounters, and >= 1 prescription claims (reference algorithm) achieved excellent performance (sensitivity, 93.1% [95% confidence interval 91-94.7]; specificity, 98.1% [96.9-98.8]; positive predictive value, 97.5% [96.1-98.5]; negative predictive value, 94.5% [92.8-95.8]) with the lowest error rate (4.2% [3.3-5.3]). The multiple sampling test confirmed that the reference algorithm achieves the best performance regarding IBD diagnosis. Algorithms including the RID registration codes exhibited poorer performance compared with that of the reference algorithm, particularly for the diagnosis of patients affiliated with secondary hospitals. The performance of the reference algorithm showed no statistical difference depending on the hospital volume or IBD type, with P-value < 0.05. Conclusions We strongly recommend the reference algorithm as a uniform standard operational definition for future studies using the NHIS database.
机译:背景和目的我们在探测诊断算法中进行了全国范围的验证研究,以鉴定韩国国家健康保险制度(NHIS)数据库内的炎症性肠病(IBD)病例。使用NHIS数据集的方法,我们开发了44种算法,将疾病(ICD)-10代码的国际分类,罕见和难治性疾病(RID)登记和索赔数据的疾病遭遇,以及药物特异性药物的药物处方。对于每种算法,我们比较了电子医疗记录数据与金标准(基于图表诊断)的案例识别结果。多个采样测试验证了整个研究人群的验证结果。结果来自17家医院的1697名患者(848例潜在案件和849个阴性对照案件)的随机全国性样本被列入验证。 ICD-10代码的组合,> = 1卫生保健障碍的要求,> = 1处方权利要求(参考算法)实现了优异的性能(敏感性,93.1%[95%置信区间91-94.7];特异性,98.1% [96.9-98.8];阳性预测值,97.5%[96.1-98.5];否定预测值,94.5%[92.8-95.8]),错误率最低(4.2%[3.3-5.3])。多个采样测试证实了参考算法实现了关于IBD诊断的最佳性能。包括RID登记码的算法与参考算法相比表现出较差的性能,特别是对于辅助医院附属的患者的诊断。参考算法的性能根据医院体积或IBD型没有统计差异,P值<0.05。结论我们强烈推荐参考算法作为使用NHIS数据库的未来研究的统一标准操作定义。

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  • 来源
    《Trends in Ecology & Evolution》 |2020年第5期|共9页
  • 作者单位

    Kyung Hee Univ Coll Med Dept Gastroenterol Ctr Crohns &

    Colitis 23 Kyungheedae Ro Seoul 02447 South Korea;

    Kyung Hee Univ Coll Med Dept Gastroenterol Ctr Crohns &

    Colitis 23 Kyungheedae Ro Seoul 02447 South Korea;

    Kyung Hee Univ Coll Med Dept Gastroenterol Ctr Crohns &

    Colitis 23 Kyungheedae Ro Seoul 02447 South Korea;

    Kyung Hee Univ Coll Med Dept Gastroenterol Ctr Crohns &

    Colitis 23 Kyungheedae Ro Seoul 02447 South Korea;

    Yonsei Univ Wonju Coll Med Dept Biostat Wonju South Korea;

    Yonsei Univ Wonju Coll Med Dept Internal Med Wonju South Korea;

    Chungbuk Natl Univ Coll Med Chungbuk Natl Univ Hosp Dept Internal Med Cheongju South Korea;

    Catholic Univ Korea Daejeon St Marys Hosp Coll Med Dept Internal Med Daejeon South Korea;

    Kyungpook Natl Univ Dept Internal Med Sch Med Daegu South Korea;

    Inje Univ Coll Med Haeundae Paik Hosp Dept Internal Med Busan South Korea;

    Jeju Natl Univ Dept Internal Med Sch Med Jeju South Korea;

    Chosun Univ Dept Internal Med Coll Med Gwangju South Korea;

    Chonbuk Natl Univ Dept Internal Med Med Sch Jeonju South Korea;

    Konyang Univ Dept Internal Med Coll Med Daejeon South Korea;

    Natl Hlth Insurance Serv Ilsan Hosp Dept Internal Med Goyang South Korea;

    Catholic Univ Korea Coll Med Dept Internal Med Seoul South Korea;

    Korea Univ Coll Med Dept Internal Med Seoul South Korea;

    Yonsei Univ Coll Med Dept Internal Med Seoul South Korea;

    Kyung Hee Univ Coll Med Kyung Hee Univ Gang Dong Dept Internal Med Seoul South Korea;

    Kyung Hee Univ Coll Med Kyung Hee Univ Gang Dong Dept Internal Med Seoul South Korea;

    Univ Ulsan Coll Med Asan Med Ctr Dept Gastroenterol Ulsan South Korea;

    Chung Ang Univ Dept Internal Med Coll Med Seoul South Korea;

    Kyung Hee Univ Coll Med Dept Gastroenterol Ctr Crohns &

    Colitis 23 Kyungheedae Ro Seoul 02447 South Korea;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 数学生态学与生物模型;
  • 关键词

    administrative claims; health care; diagnostic algorithm; inflammatory bowel disease; operational definition;

    机译:行政索赔;医疗保健;诊断算法;炎症性肠病;操作定义;

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