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Small Sample Inference for Fixed Effects from Restricted Maximum Likelihood

Biometrics · 1997 · Vol. 53(3) · pp. 983–983
Michael G. KenwardJames Roger

Abstract

Restricted maximum likelihood (REML) is now well established as a method for estimating the parameters of the general Gaussian linear model with a structured covariance matrix, in particular for mixed linear models. Conventionally, estimates of precision and inference for fixed effects are based on their asymptotic distribution, which is known to be inadequate for some small-sample problems. In this paper, we present a scaled Wald statistic, together with an F approximation to its sampling distribution, that is shown to perform well in a range of small sample settings. The statistic uses an adjusted estimator of the covariance matrix that has reduced small sample bias. This approach has the advantage that it reproduces both the statistics and F distributions in those settings where the latter is exact, namely for Hotelling T2 type statistics and for analysis of variance F-ratios. The performance of the modified statistics is assessed through simulation studies of four different REML analyses and the methods are illustrated using three examples.

Statistical Methods and Bayesian InferenceGenetics and Plant BreedingAdvanced Statistical Methods and ModelsRestricted maximum likelihoodStatisticsMathematicsWald testEstimatorSample size determinationInferenceStatisticCovarianceSampling distribution

MeSH terms

Analysis of VarianceBiometryClinical Trials as TopicHumansIntermittent ClaudicationNitrogen FixationPlantsProbabilityRegression AnalysisResearch DesignRhizobiumSoil MicrobiologyReproducibility of ResultsModels, StatisticalBias
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References
Maximum Likelihood from Incomplete Data Via the <i>EM</i> Algorithm
Journal of the Royal Statistical Society Series B (Statistical Methodology) · 1977 · 49,286 citations
Random-Effects Models for Longitudinal Data
Biometrics · 1982 · 8,821 citations
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