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Statistical Learning for Biomedical Data
Hoofdkenmerken
Auteur: James D. Malley; Karen G. Malley; Sinisa Pajevic
Titel: Statistical Learning for Biomedical Data
Uitgever: Cambridge University Press
ISBN: 9780511985546
ISBN boekversie: 9780521875806
Prijs: € 51.76
Verschijningsdatum: 24-02-2011
Inhoudelijke kenmerken
Categorie: Biostatistics
Taal: English
Imprint: Cambridge University Press
Technische kenmerken
Verschijningsvorm: E-book
 

Inhoudsopgave:

This book is for anyone who has biomedical data and needs to identify variables that predict an outcome, for two-group outcomes such as tumor/not-tumor, survival/death, or response from treatment. Statistical learning machines are ideally suited to these types of prediction problems, especially if the variables being studied may not meet the assumptions of traditional techniques. Learning machines come from the world of probability and computer science but are not yet widely used in biomedical research. This introduction brings learning machine techniques to the biomedical world in an accessible way, explaining the underlying principles in nontechnical language and using extensive examples and figures. The authors connect these new methods to familiar techniques by showing how to use the learning machine models to generate smaller, more easily interpretable traditional models. Coverage includes single decision trees, multiple-tree techniques such as Random Forests™, neural nets, support vector machines, nearest neighbors and boosting.
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