Maximizing the usefulness of data obtained with planned missing value patterns: An application of maximum likelihood procedures

被引:235
作者
Graham, JW
Hofer, SM
MacKinnon, DP
机构
[1] UNIV SO CALIF, LOS ANGELES, CA 90089 USA
[2] ARIZONA STATE UNIV, TEMPE, AZ 85287 USA
关键词
D O I
10.1207/s15327906mbr3102_3
中图分类号
O1 [数学];
学科分类号
0701 ; 070101 ;
摘要
Researchers often face a dilemma: Should they collect little data and emphasize quality, or much data at the expense of quality? The utility of the 3-form design coupled with maximum likelihood methods for estimation of missing values was evaluated. In 3-form design surveys, four sets of items, X, A, B, and C are administered: Each third of the subjects receives X and one combination of two other item sets - AB, BC, or AC. Variances and covariances were estimated with pairwise deletion, mean replacement, single imputation, multiple imputation, raw data maximum likelihood, multiple-group covariance structure modeling, and Expectation-Maximization (EM) algorithm estimation. The simulation demonstrated that maximum likelihood estimation and multiple imputation methods produce the most efficient and least biased estimates of variances and covariances for normally distributed and slightly skewed data when data are missing completely at random (MCAR). Pairwise deletion provided equally unbiased estimates but was less efficient than ML procedures. Further simulation results demonstrated that non-maximum likelihood methods break down when: data are not missing completely at random. Application of these methods with empirical drug use data resulted in similar covariance matrices for pairwise and EM estimation, however, ML estimation produced better and more efficient regression estimates. Maximum likelihood estimation or multiple imputation procedures, which are dow becoming more readily available, are always recommended. In order to maximize the efficiency of the ML parameter estimates, it is recommended that scale items be split across forms rather than being left intact within forms.
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页码:197 / 218
页数:22
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