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首页> 外文期刊>Journal of medical systems >Development of an Algorithm to Identify Cannabis Urine Drug Test Results within a Multi-Site Electronic Health Record System
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Development of an Algorithm to Identify Cannabis Urine Drug Test Results within a Multi-Site Electronic Health Record System

机译:在多站点电子健康记录系统内识别大麻尿药物测试结果的算法的开发

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摘要

With the rapid changes in the legalization of cannabis in the U.S., there is an urgent need to understand clinical outcomes and processes of care among patients who use cannabis, particularly among patients with chronic pain who are high utilizers of cannabis. Electronic health records (EHRs) are a common and convenient mechanism for examining processes of care; however, there is not an indication for cannabis use that does not meet criteria for a diagnostic disorder. We used urine drug test (UDT) results identified through EHRs to identify patients with confirmed cannabis use. We developed and tested an algorithm to identify outcomes of UDT results for cannabis because there is wide variability in reporting methodology, including in multi-site health systems. Among all patients receiving care in the Department of Veterans Affairs (VA) who were prescribed long-term opioid therapy for chronic pain, we identified a random sample who completed UDT for cannabis. Through an iterative process, we developed an algorithm to identify UDT cannabis results. Manual review of EHR data was conducted to verify accuracy of UDT results. The final UDT algorithm correctly identified 99% of cannabis positive UDT results and 100% of cannabis negative UDT results among 200 randomly sampled patients. Study findings suggest a high degree of accuracy for using an algorithm to identify samples of patients with positive cannabis UDT results across multiple institutions with disparate UDT reporting practices. The methodology for testing this algorithm is feasible and may be applied to other multi-site health systems.
机译:随着美国大麻的合法化的快速变化,迫切需要了解使用大麻的患者的临床结果和护理过程,特别是患有大麻高利用者的慢性疼痛的患者。电子健康记录(EHRS)是检查护理过程的常见方便机制;但是,没有大麻使用的指示,不符合诊断障碍的标准。我们使用通过EHRS确定的尿液药物测试(UDT)结果来识别确诊的大麻使用的患者。我们开发并测试了一种算法,以识别大麻UDT结果的结果,因为报告方法有很大的变化,包括在多网站卫生系统中。在所有经过经护理部门的所有患者中进行的患者(VA),他为慢性疼痛的长期阿片类药物治疗,我们确定了一个随机样本,为大麻完成了UDT。通过迭代过程,我们开发了一种识别UDT大麻结果的算法。进行了EHR数据的手动审查以验证UDT结果的准确性。最终的UDT算法正确地确定了99%的大麻阳性UDT结果,100%的大麻负UDT结果是200个随机采样的患者。研究结果表明,使用算法识别具有不同UDT报告实践的多个机构的患者患者样本的高精度。测试该算法的方法是可行的,并且可以应用于其他多站点健康系统。

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