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Meta-analysis of Binary Data Using Profile Likelihood: Chapman & Hall/CRC Interdisciplinary Statistics

Autor Dankmar Bohning, Sasivimol Rattanasiri, Ronny Kuhnert
en Limba Engleză Hardback – 27 mar 2008
Providing reliable information on an intervention effect, meta-analysis is a powerful statistical tool for analyzing and combining results from individual studies. Meta-Analysis of Binary Data Using Profile Likelihood focuses on the analysis and modeling of a meta-analysis with individually pooled data (MAIPD). It presents a unifying approach to modeling a treatment effect in a meta-analysis of clinical trials with binary outcomes. After illustrating the meta-analytic situation of an MAIPD with several examples, the authors introduce the profile likelihood model and extend it to cope with unobserved heterogeneity. They describe elements of log-linear modeling, ways for finding the profile maximum likelihood estimator, and alternative approaches to the profile likelihood method. The authors also discuss how to model covariate information and unobserved heterogeneity simultaneously and use the profile likelihood method to estimate odds ratios. The final chapters look at quantifying heterogeneity in an MAIPD and show how meta-analysis can be applied to the surveillance of scrapie.
Containing new developments not available in the current literature, along with easy-to-follow inferences and algorithms, this book enables clinicians to efficiently analyze MAIPDs.
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Specificații

ISBN-13: 9781584886303
ISBN-10: 1584886307
Pagini: 206
Ilustrații: 54 b/w images, 63 tables and 188 equations
Dimensiuni: 156 x 234 x 18 mm
Greutate: 0.42 kg
Ediția:1
Editura: CRC Press
Colecția Chapman and Hall/CRC
Seria Chapman & Hall/CRC Interdisciplinary Statistics


Public țintă

Researchers and graduate students in statistics, biostatistics, medicine, healthcare, social sciences, clinical trials, and epidemiology.

Cuprins

Introduction. The Basic Model. Modeling Unobserved Heterogeneity. Modeling Covariate Information. Alternative Approaches. Incorporating Covariate Information and Unobserved Heterogeneity. Working with CAMAP. Estimation of Odds Ratio Using the Profile Likelihood. Quantification of Heterogeneity in an MAIPD. Scrapie in Europe: A Multicountry Surveillance Study as an MAIPD. Appendix. Bibliography. Index.

Notă biografică

Bohning, Dankmar; Rattanasiri, Sasivimol; Kuhnert, Ronny

Descriere

Illustrating the use of meta-analysis in many real-world trial examples, this work focuses on the analysis and modeling of a meta-analysis with individually pooled data (MAIPD). It explores alternatives to the profile likelihood method, including approximated likelihood and multilevel models, and shows how the nonparametric profile maximum likelihood estimator can be computed via the EM algorithm with a gradient function update. The authors explain how to test for and determine the amount of heterogeneity in an MAIPD. They also highlight the application of the software program CAMAP for analyzing an MAIPD and offer the software for free online.