Modeling of Many Skewed Biomarkers and Missing Data: an Example in Breast Cancer - Mohammad Reza Baneshi - Books - LAP LAMBERT Academic Publishing - 9783845436753 - August 19, 2011
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Modeling of Many Skewed Biomarkers and Missing Data: an Example in Breast Cancer

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Multivariable prognostic models are widely used in all areas of science, in particular in cancer research. New scientific methods make it possible cost-effective measurement of many new biomarkers on frozen tissue from biopsies. In addition, biomarkers usually exhibit skewed distributions and their analysis is hampered by missing data. These issues (i.e. number of variables, missing data, and skewed distribution) create difficulty for prognostic modelling methods. In this book, methods to tackle each of these problems are discussed. Alternative approaches are presented with emphasize on practical issues, and examples from papers published are presented. Methods are applied using a breast cancer data set as an example. This book is aimed at postgraduate students studying biostatistics and epidemiology, as well as researchers working in the field of survival analysis. Mohammad Reza Baneshi is assistant professor of Biostatistics at Research Center for Modeling in Health, affiliated to Kerman University of Medical Sciences.

Media Books     Paperback Book   (Book with soft cover and glued back)
Released August 19, 2011
ISBN13 9783845436753
Publishers LAP LAMBERT Academic Publishing
Pages 208
Dimensions 150 × 12 × 226 mm   ·   328 g
Language German