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Local multiple imputation
2002
Biometrika
S Dealing with missing data via parametric multiple imputation methods usually implies stating several strong assumptions both about the distribution of the data and about underlying regression relationships. If such parametric assumptions do not hold, the multiply imputed data are not appropriate and might produce inconsistent estimators and thus misleading results. In this paper, a fully nonparametric and a semiparametric imputation method are studied, both based on local resampling
doi:10.1093/biomet/89.2.375
fatcat:niwi6sxoz5csrcpktr7v33tmbe