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Latent Variable Regression Analysis with Missing Covariates
Details
Missing data often arises in regression analysis either by study design or stochastic censoring. Restriction of analysis to complete observations may yield biased inferences. Developing likelihood-based methods for analyzing missing data in a regression setting has largely focused on missing values in the dependent variable. In this book, we discuss two likelihood-based approaches to inference for the regression of multivariate categorical outcomes on a set of covariates when some of the covariate values are missing. Specifically, this research seeks to develop methodologies in the context of latent variable models that (i) synthesize multiple outcomes into an latent construct that is easily interpretable yet retains relevant heterogeneity in individual outcomes; (ii) account for measurement inaccuracy in observable outcomes; (iii) model the association between the latent construct and covariates; (iv) handle missing covariate data in both ignorable and nonignorable cases. This book should be of particular interest to psychosocial scientists and others who plan to use latent variables models, but are discouraged by the daunting analytical difficulties associated with missing data.
Autorentext
Qian-Li Xue, Ph.D.: Studied Biostatistics at the Johns Hopkins University; Assistant Professor of Medicine, Biostatistics at the Johns Hopkins University. Karen Bandeen-Roche, Ph.D.: Studied Operations Research and Industrial Engineering at Cornell University; Hurley Dorrier Professor and Chair of Biostatistics at the Johns Hopkins University.
Weitere Informationen
- Allgemeine Informationen
- GTIN 09783838321578
- Sprache Englisch
- Größe H220mm x B150mm x T9mm
- Jahr 2009
- EAN 9783838321578
- Format Kartonierter Einband
- ISBN 383832157X
- Veröffentlichung 19.10.2009
- Titel Latent Variable Regression Analysis with Missing Covariates
- Autor Qian Li Xue , Karen Bandeen-Roche
- Untertitel Likelihood-Based Methods and Applications
- Gewicht 238g
- Herausgeber LAP LAMBERT Academic Publishing
- Anzahl Seiten 148
- Genre Mathematik