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Christian Ritz & Jens Carl Streibig 
Nonlinear Regression with R 

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R is a rapidly evolving lingua franca of graphical display and statistical analysis of experiments from the applied sciences. Currently, R offers a wide range of functionality for nonlinear regression analysis, but the relevant functions, packages and documentation are scattered across the R environment. This book provides a coherent and unified treatment of nonlinear regression with R by means of examples from a diversity of applied sciences such as biology, chemistry, engineering, medicine and toxicology. R. Subsequent chapters explain the salient features of the main fitting function nls (), the use of model diagnostics, how to deal with various model departures, and carry out hypothesis testing. In the final chapter grouped-data structures, including an example of a nonlinear mixed-effects regression model, are considered.

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Table des matières

Getting Started.- Starting Values and Self-starters.- More on nls().- Model Diagnostics.- Remedies for Model Violations.- Uncertainty, Hypothesis Testing, and Model Selection.- Grouped Data.
Langue Anglais ● Format PDF ● Pages 148 ● ISBN 9780387096162 ● Taille du fichier 1.7 MB ● Maison d’édition Springer New York ● Lieu NY ● Pays US ● Publié 2008 ● Téléchargeable 24 mois ● Devise EUR ● ID 2143765 ● Protection contre la copie DRM sociale

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