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Comparison of Two Multiple Imputation Procedures in a Cancer Screening Survey
2021
Journal of Data Science
Commonly in survey research, multiple, different analyses are conducted by one or more than one researcher on the same data set. The conclusions from these analyses should be consistent despite the presence of missing data. Multiple imputation is frequently used to ensure consistency of analyses. Two methods for multiple imputation of missing data are a combination of hot deck and regression imputation, and multivariate normal multiple imputation. It is unknown whether these methods will give
doi:10.6339/jds.2003.01(3).132
fatcat:xpdpxbvxabajvjumdnbwj5oaky