The detection of residual serial correlation in linear mixed models |
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Authors: | G Verbeke E Lesaffre LJ Brant |
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Affiliation: | Biostatistical Centre for Clinical Trials, Catholic University of Leuven, Belgium. |
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Abstract: | Diggle (1988) described how the empirical semi-variogram of ordinary least squares residuals can be used to suggest an appropriate serial correlation structure in stationary linear mixed models. In this paper, this approach is extended to non-stationary models which include random effects other than intercepts, and will be applied to prostate cancer data, taken from the Baltimore Longitudinal Study of Aging. A simulation study demonstrates the effectiveness of this extended variogram for improving the covariance structure of the linear mixed model used to describe the prostate data. |
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