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Multivariate Exponentially Weighted Moving Average chart for monitoring patient's progress after cardiac surgery

机译:多元指数加权移动平均值图表,用于监测心脏手术后患者的病情

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Statistical process control has emerged in the medical literature after wide expansion in the industry. In clinical monitoring, there are always more than one quality characteristics of interest which are usually correlated. In such cases, multivariate control charts would be deployed to monitor the medical process. In this paper, Multivariate Exponentially Weighted Moving Average control chart (MEWMA) is applied to monitor the patient's progress in the Intensive Care Unit, which is characterised by nine quality characteristics. One difficulty encountered with multivariate control charts is the interpretation of out-of-control signals. The univariate control charts are employed to obtain a rough estimate of the sources of multivariate out-of-control signals. Issues of non-normality in the data are addressed,and suitable transformations are offered. A comparison is made between the performance of EWMA and MEWMA methods in monitoring of patient recovery process. The results clearly show the superiority of MEWMA over univariate EWMA chart.
机译:随着行业的广泛发展,统计过程控制已出现在医学文献中。在临床监测中,通常总是存在多个相关的感兴趣的质量特征。在这种情况下,将使用多元控制图来监视医疗过程。本文采用多元指数加权移动平均控制图(MEWMA)来监测重症监护病房的病情,该病具有9个质量特征。多元控制图遇到的一个困难是失控信号的解释。单变量控制图用于获得多变量失控信号源的粗略估计。解决了数据中的非正常问题,并提供了适当的转换。比较了EWMA和MEWMA方法在监测患者康复过程中的性能。结果清楚地表明,MEWMA优于单变量EWMA图表。

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