Sensitivity Analyses in Empirical Studies Plagued with Missing Data

Sensitivity Analyses in Empirical Studies Plagued with Missing Data

by Viktoriia Liublinska

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Analyses of data with missing values often require assumptions about missingness mechanisms that cannot be assessed empirically, highlighting the need for sensitivity analyses. However, universal recommendations for reporting missing data and conducting sensitivity analyses in empirical studies are scarce. Both steps are often neglected by practitioners due to the lack of clear guidelines for summarizing missing data and systematic explorations of alternative assumptions, as well as the typical attendant complexity of missing not at random (MNAR) models.

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