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Mining association rules from a pediatric primary care decision support system.

机译:儿科初级保健决策支持系统中的挖掘关联规则。

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摘要

The purpose of this study was to apply an unsupervised data mining algorithm to a database containing data collected at the point of care for clinical decision support. The data set was taken from the Child Health Improvement Program (CHIP), a preventive services tracking and reminder system in use at the University of North Carolina. The database contains over 30,000 visits. We used a previously described pattern discovery algorithm to extract 2nd and 3rd order association rules from the data and reviewed the literature two see if the associations had been described before. The algorithm discovered 16 2nd order associations and 103 3rd order associations. The 3rd order associations contained no new information. The 2nd order associations demonstrated a covariance among a range of health risk behaviors. Additionally, the algorithm discovered that both tobacco smoke exposure and chronic cardiopulmonary disease are associated with failure on developmental screens. These relationships have been described before and have been attributed to underlying poverty. The work demonstrates the ability of unsupervised data mining by rule association on sparse clinical data to discover clinically important associations. However, many associations may be previously known or explained by confounding variables.
机译:这项研究的目的是将一种无监督的数据挖掘算法应用于一个数据库,该数据库包含在临床决策支持时就诊时收集的数据。该数据集来自儿童健康改善计划(CHIP),这是北卡罗来纳大学正在使用的预防服务跟踪和提醒系统。该数据库包含30,000多次访问。我们使用先前描述的模式发现算法从数据中提取第二级和第三级关联规则,并回顾了文献二,以查看关联是否已在之前进行了描述。该算法发现了16个2阶关联和103个3阶关联。三阶关联不包含新信息。二阶关联显示出一系列健康风险行为之间的协方差。此外,该算法还发现,暴露于烟草烟雾和慢性心肺疾病均与发育筛查失败有关。这些关系以前已经描述过,并归因于潜在的贫困。这项工作通过稀疏临床数据上的规则关联来证明无监督数据挖掘的能力,以发现具有临床意义的关联。但是,许多关联可能是先前已知的,或者通过混淆变量来解释。

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