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临床实践指南中多种慢性病的自动识别

Automating Identification of Multiple Chronic Conditions in Clinical Practice Guidelines.

作者信息

Leung Tiffany I, Jalal Hawre, Zulman Donna M, Dumontier Michel, Owens Douglas K, Musen Mark A, Goldstein Mary K

机构信息

Department of Veterans Affairs, VA Palo Alto Health Care System, Palo Alto, CA ; Center for Primary Care and Outcomes Research, Stanford University, Stanford, CA ; Division of General Medical Disciplines, Stanford University, Stanford, CA.

Department of Veterans Affairs, VA Palo Alto Health Care System, Palo Alto, CA ; Center for Primary Care and Outcomes Research, Stanford University, Stanford, CA.

出版信息

AMIA Jt Summits Transl Sci Proc. 2015 Mar 25;2015:456-60. eCollection 2015.

Abstract

Many clinical practice guidelines (CPGs) are intended to provide evidence-based guidance to clinicians on a single disease, and are frequently considered inadequate when caring for patients with multiple chronic conditions (MCC), or two or more chronic conditions. It is unclear to what degree disease-specific CPGs provide guidance about MCC. In this study, we develop a method for extracting knowledge from single-disease chronic condition CPGs to determine how frequently they mention commonly co-occurring chronic diseases. We focus on 15 highly prevalent chronic conditions. We use publicly available resources, including a repository of guideline summaries from the National Guideline Clearinghouse to build a text corpus, a data dictionary of ICD-9 codes from the Medicare Chronic Conditions Data Warehouse (CCW) to construct an initial list of disease terms, and disease synonyms from the National Center for Biomedical Ontology to enhance the list of disease terms. First, for each disease guideline, we determined the frequency of comorbid condition mentions (a disease-comorbidity pair) by exactly matching disease synonyms in the text corpus. Then, we developed an annotated reference standard using a sample subset of guidelines. We used this reference standard to evaluate our approach. Then, we compared the co-prevalence of common pairs of chronic conditions from Medicare CCW data to the frequency of disease-comorbidity pairs in CPGs. Our results show that some disease-comorbidity pairs occur more frequently in CPGs than others. Sixty-one (29.0%) of 210 possible disease-comorbidity pairs occurred zero times; for example, no guideline on chronic kidney disease mentioned depression, while heart failure guidelines mentioned ischemic heart disease the most frequently. Our method adequately identifies comorbid chronic conditions in CPG recommendations with precision 0.82, recall 0.75, and F-measure 0.78. Our work identifies knowledge currently embedded in the free text of clinical practice guideline recommendations and provides an initial view of the extent to which CPGs mention common comorbid conditions. Knowledge extracted from CPG text in this way may be useful to inform gaps in guideline recommendations regarding MCC and therefore identify potential opportunities for guideline improvement.

摘要

许多临床实践指南(CPG)旨在为临床医生提供针对单一疾病的循证指导,而在护理患有多种慢性病(MCC)或两种及以上慢性病的患者时,这些指南常被认为不够充分。目前尚不清楚针对特定疾病的CPG在多大程度上能为MCC提供指导。在本研究中,我们开发了一种从单一疾病慢性病CPG中提取知识的方法,以确定它们提及常见共病慢性病的频率。我们聚焦于15种高度流行的慢性病。我们使用公开可用的资源,包括来自国家指南交换中心的指南摘要库来构建文本语料库,来自医疗保险慢性病数据仓库(CCW)的ICD - 9编码数据字典来构建疾病术语初始列表,以及来自国家生物医学本体中心的疾病同义词来扩充疾病术语列表。首先,对于每个疾病指南,我们通过在文本语料库中精确匹配疾病同义词来确定共病情况提及的频率(疾病 - 共病对)。然后,我们使用指南的一个样本子集开发了一个带注释的参考标准。我们用这个参考标准来评估我们的方法。接着,我们将医疗保险CCW数据中常见慢性病对的共患病率与CPG中疾病 - 共病对的频率进行比较。我们的结果表明,一些疾病 - 共病对比其他的出现频率更高。210种可能的疾病 - 共病对中有61种(29.0%)出现次数为零;例如,没有关于慢性肾病的指南提及抑郁症,而心力衰竭指南提及缺血性心脏病的频率最高。我们的方法能够以精确率0.82、召回率0.75和F值0.78充分识别CPG推荐中的共病慢性病。我们的工作识别了当前嵌入在临床实践指南推荐自由文本中的知识,并初步展现了CPG提及常见共病情况的程度。以这种方式从CPG文本中提取的知识可能有助于了解关于MCC的指南推荐中的差距,从而识别指南改进的潜在机会。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a5d8/4525235/d64bd25752b9/2091334f1.jpg

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