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Methods for handling missing data in palliative care research.

机译:姑息治疗研究中处理缺失数据的方法。

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Missing data is a common problem in palliative care research due to the special characteristics (deteriorating condition, fatigue and cachexia) of the population. Using data from a palliative study, we illustrate the problems that missing data can cause and show some approaches for dealing with it. Reasons for missing data and ways to deal with missing data (including complete case analysis, imputation and modelling procedures) are explored. Possible mechanisms behind the missing data are: missing completely at random, missing at random or missing not at random. In the example study, data are shown to be missing at random. Imputation of missing data is commonly used (including last value carried forward, regression procedures and simple mean). Imputation affects subsequent summary statistics and analyses, and can have a substantial impact on estimated group means and standard deviations. The choice of imputation method should be carried out with caution and the effects reported.
机译:由于人口的特殊特征(病情恶化,疲劳和恶病质),数据丢失是姑息治疗研究中的一个普遍问题。使用姑息研究的数据,我们说明了缺失数据可能导致的问题,并展示了一些处理数据的方法。探讨了丢失数据的原因和处理丢失数据的方法(包括完整的案例分析,估算和建模过程)。丢失数据背后的可能机制是:完全随机丢失,随机丢失或非随机丢失。在示例研究中,数据显示随机丢失。缺失数据的插补是常用的(包括结转的最后一个值,回归程序和简单均值)。推算会影响后续的摘要统计和分析,并且可能会对估计的组均值和标准差产生重大影响。插补方法的选择应谨慎进行,并应报告其影响。

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