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Longitudinal LISREL model estimation from incomplete panel data using the EM algorithm and the Kalman smoother
Authors:R A R G Jansen  J H L Oud
Institution:Department of Special Education, University of Nijmegen, Montessorilaan 3, PO Box 9104, 6500 HE Nijmegen, The Netherlands
Abstract:Longitudinal data sets with the structure T (time points) × N (subjects) are often incomplete because of data missing for certain subjects at certain time points. The EM algorithm is applied in conjunction with the Kalman smoother for computing maximum likelihood estimates of longitudinal LISREL models from varying missing data patterns. The iterative procedure uses the LISREL program in the M-step and the Kalman smoother in the E-step. The application of the method is illustrated by simulating missing data on a data set from educational research.
Keywords:EM algorithm  Kalman smoother  longitudinal LISREL modeling  missing data  panel analysis
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