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Resampling Techniques in Regression Analysis for Model Simplification
Details
Resampling techniques are now-a-days widely used for model assessment and comparison. In the literature, many variable selection methods for regression modeling have been developed whose performance depends critically on the stopping rules. In this book, resampling application for variable selection on the basis of optimum choice of stopping rules for each data set and model simplification in various regression models are addressed. We propose a general approach of resampling techniques in regression analysis that allows us to choose the stopping criterion's for each data set. Our selection method first choosing appropriate cutoff values/stopping criterion's and results in selecting a good subset regression model. We focus on optimizing cutoff values or stopping criterion's in automated model selection methods in regression analysis due to the interest in holding only authentic predictor variables in the regression models. We first focus on linear regression model, and then extended our approach to generalized regression, cox regression and finally robust regression.
Autorentext
Assistant professor of ENT and Head & Neck Surgery, Sirsyed College Of Medical SciencesFCPS 2009MCPS 2007DLO 2007MBBS 2000Managing Editor in PAKISTAN JOURNAL OF OTOLARYNGOLOGY AND HEAD & NECK SURGERY.
Weitere Informationen
- Allgemeine Informationen
- GTIN 09783659142901
- Sprache Englisch
- Größe H14mm x B220mm x T150mm
- Jahr 2012
- EAN 9783659142901
- Format Kartonierter Einband (Kt)
- ISBN 978-3-659-14290-1
- Titel Resampling Techniques in Regression Analysis for Model Simplification
- Autor Zafar Mahmood
- Untertitel Model Selection Strategies
- Gewicht 377g
- Herausgeber LAP Lambert Academic Publishing
- Anzahl Seiten 272
- Genre Mathematik