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Healthcare information systems: data mining methods in the creation of a clinical recommender system

机译:医疗保健信息系统:创建临床推荐系统时的数据挖掘方法

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Recommender systems have been extensively studied to present items, such as movies, music and books that are likely of interest to the user. Researchers have indicated that integrated medical information systems are becoming an essential part of the modern healthcare systems. Such systems have evolved to an integrated enterprise-wide system. In particular, such systems are considered as a type of enterprise information systems or ERP system addressing healthcare industry sector needs. As part of efforts, nursing care plan recommender systems can provide clinical decision support, nursing education, clinical quality control, and serve as a complement to existing practice guidelines. We propose to use correlations among nursing diagnoses, outcomes and interventions to create a recommender system for constructing nursing care plans. In the current study, we used nursing diagnosis data to develop the methodology. Our system utilises a prefix-tree structure common in itemset mining to construct a ranked list of suggested care plan items based on previously-entered items. Unlike common commercial systems, our system makes sequential recommendations based on user interaction, modifying a ranked list of suggested items at each step in care plan construction. We rank items based on traditional association-rule measures such as support and confidence, as well as a novel measure that anticipates which selections might improve the quality of future rankings. Since the multi-step nature of our recommendations presents problems for traditional evaluation measures, we also present a new evaluation method based on average ranking position and use it to test the effectiveness of different recommendation strategies.
机译:推荐系统已经被广泛研究以呈现用户可能感兴趣的项目,例如电影,音乐和书籍。研究人员指出,集成的医疗信息系统正在成为现代医疗保健系统的重要组成部分。这样的系统已经发展成为集成的企业范围的系统。特别地,此类系统被认为是满足医疗保健行业需求的一种企业信息系统或ERP系统。作为工作的一部分,护理计划推荐系统可以提供临床决策支持,护理教育,临床质量控制,并作为对现有实践指南的补充。我们建议利用护理诊断,结果和干预措施之间的相关性来创建用于构建护理计划的推荐系统。在本研究中,我们使用护理诊断数据来开发方法。我们的系统利用项目集挖掘中常见的前缀树结构,根据先前输入的项目构建建议的护理计划项目的排名列表。与常见的商业系统不同,我们的系统会根据用户的交互进行顺序推荐,并在护理计划构建的每个步骤中修改建议项目的排名列表。我们根据支持和信心等传统协会规则的衡量标准对项目进行排名,并根据一种新颖的衡量标准对项目进行排名,该方法可以预测哪些选择可能会提高未来排名的质量。由于我们建议的多步骤性质给传统评估方法带来了问题,因此,我们还提出了一种基于平均排名位置的新评估方法,并使用它来测试不同推荐策略的有效性。

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