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Risk of Pneumonia and Associated Outcomes in Intensive Care Unit: An Integrated Approach of Visual and Cluster Analysis

机译:重症监护病房的肺炎风险和相关结果:视觉和聚类分析的综合方法

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Big data analysis may contribute to widen information for the prevention of diseases by the identification of risk factors and the prediction of outcomes, such as healthcare associated infections (HAIs) in Intensive Care Units (ICUs). Here, for the first time, we present an integrated approach of visual and cluster analysis, supported by traditional statistical methods, to identify and to describe determinants of risks of pneumonia and associated adverse outcomes in ICU patients. Our study indicates that Sankey diagrams are useful tools to visualise flows of patients from their admission to ICU and how each cluster and duration of intubation contribute to the acquisition of pneumonia. Moreover, they enabled us to graphically represent the role of Acinetobacter baumannii, Klebsiella pneumoniae and Pseudomonas aeruginosa-associated pneumonia on the risk of sepsis and death. The use of an integrated approach of cluster, visual and statistical analyses allows a better understanding, interpretation and communication of health data on specific issues in the field of Public Health
机译:大数据分析可能会通过识别风险因素和预测结果(例如重症监护病房(ICU)中的医疗相关感染(HAI))来扩大信息,以预防疾病。在这里,我们首次提出了在传统统计方法的支持下进行视觉和聚类分析的集成方法,以识别和描述ICU患者肺炎风险和相关不良后果的决定因素。我们的研究表明,Sankey图是有用的工具,可以可视化患者从入院到ICU的流程,以及每个簇和插管的持续时间如何有助于获得肺炎。此外,它们使我们能够用图形表示鲍曼不动杆菌,肺炎克雷伯菌和铜绿假单胞菌相关的肺炎在败血症和死亡风险中的作用。使用综合的聚类,视觉和统计分析方法,可以更好地理解,解释和交流有关公共卫生领域特定问题的卫生数据

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