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ESTIMATION BY DATA AUGMENTATION IN REGRESSION MODELS WITH CONTINUOUS AND DISCRETE COVARIATES MEASURED WITH ERROR

โœ Scribed by JOUNI KUHA


Publisher
John Wiley and Sons
Year
1997
Tongue
English
Weight
306 KB
Volume
16
Category
Article
ISSN
0277-6715

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โœฆ Synopsis


Estimation methods are considered for regression models which have both misclassified discrete covariates and continuous covariates measured with error. Adjusted parameter estimates are obtained using the method of data augmentation, where the true values of the covariates measured with error are regarded as missing data. Validation data on the covariates are assumed to be available. The distinction between internal and external validation data is emphasized, and its effects on the analysis are examined. The method is illustrated with simulated data.


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