Analysis of Correlated Data with SAS and R
Autor Mohamed M. Shoukrien Limba Engleză Hardback – 2 apr 2018
The book is designed for senior undergraduate and graduate students in the health sciences, epidemiology, statistics, and biostatistics as well as clinical researchers, and consulting statisticians who can apply the methods with their own data analyses. In each chapter a brief description of the foundations of statistical theory needed to understand the methods is given, thereafter the author illustrates the applicability of the techniques by providing sufficient number of examples.
The last three chapters of the 4th edition contain introductory material on propensity score analysis, meta-analysis and the treatment of missing data using SAS and R. These topics were not covered in previous editions. The main reason is that there is an increasing demand by clinical researchers to have these topics covered at a reasonably understandable level of complexity.
Mohamed Shoukri is principal scientist and professor of biostatistics at The National Biotechnology Center, King Faisal Specialist Hospital and Research Center and Al-Faisal University, Saudi Arabia. Professor Shoukri’s research includes analytic epidemiology, analysis of hierarchical data, and clinical biostatistics. He is an associate editor of the 3Biotech journal, a Fellow of the Royal Statistical Society and an elected member of the International Statistical Institute.
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Specificații
ISBN-13: 9781138197459
ISBN-10: 1138197459
Pagini: 514
Ilustrații: 138 Tables, black and white; 40 Illustrations, black and white
Dimensiuni: 156 x 234 x 36 mm
Greutate: 0.98 kg
Ediția:4 New edition
Editura: CRC Press
Colecția Chapman and Hall/CRC
ISBN-10: 1138197459
Pagini: 514
Ilustrații: 138 Tables, black and white; 40 Illustrations, black and white
Dimensiuni: 156 x 234 x 36 mm
Greutate: 0.98 kg
Ediția:4 New edition
Editura: CRC Press
Colecția Chapman and Hall/CRC
Cuprins
ANALYZING GROUP MEANS WHEN THE ANOVA ASSUMPTIONS ARE NOT SATISFIED. STATISTICAL METHODS FOR HOSPITAL EPIDEMIOLOGY. ANALYZING CLUSTERED DATA. ANALYSIS OF CROSS-CLASSIFIED DATA. STATISTICAL ANALYSIS OF CLUSTERED BINARY DATA. MODELLING BINARY OUTCOME DATA. STATISTICAL METHODS FOR PROPENSITY SCORE MATCHING. ANALYSIS OF CLUSTERED COUNT DATA. ANALYSIS OF TIME SERIES WITH APPLICATION TO DETECTION OF DISEASE OUTBREAK. REPEATED MEASURES AND LONGITUDINAL DATA ANALYSIS. DATA ANALYSES WITH MISSING DATA (IMPUTATIONS TECHNIQUES). SURVIVAL DATA ANALYSIS. META ANALYSIS.
Notă biografică
Mohamed Shoukri is principal scientist and professor of biostatistics at The National Biotechnology Center, King Faisal Specialist Hospital and Research Center and Al-Faisal University, Saudi Arabia. Professor Shoukri’s research includes analytic epidemiology, analysis of hierarchical data, and clinical biostatistics. He is an associate editor of the 3Biotech journal, a Fellow of the Royal Statistical Society and an elected member of the International Statistical Institute.
Descriere
Presenting in depth discussions of various statistical models and methods needed for the analysis of medical, biological and biostatistics data, this book emphasizes the analysis of data when normal distribution assumptions are not tenable. It provides detailed explanations in situations when data are naturally clustered in groups, whereby the Intra-class Correlation Coefficient plays a fundamental role in the model development. This new edition incorporates several additions that take into account recent developments in the field.