Vendeur : Zubal-Books, Since 1961, Cleveland, OH, Etats-Unis
EUR 37,70
Autre deviseQuantité disponible : 1 disponible(s)
Ajouter au panierEtat : New. *Price HAS BEEN REDUCED by 10% until Monday, Oct. 13 (weekend SALE item)* 372 pp., hardcover, new. - If you are reading this, this item is actually (physically) in our stock and ready for shipment once ordered. We are not bookjackers. Buyer is responsible for any additional duties, taxes, or fees required by recipient's country.
Vendeur : SpringBooks, Berlin, Allemagne
Edition originale
EUR 28,28
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Ajouter au panierHardcover. Etat : Very Good. 1. Auflage. unread, with a mimimum of shelfwear.
Vendeur : Books Puddle, New York, NY, Etats-Unis
EUR 62,16
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Ajouter au panierEtat : New. pp. 280.
Vendeur : Majestic Books, Hounslow, Royaume-Uni
EUR 62,35
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Ajouter au panierEtat : New. pp. 280.
Vendeur : Biblios, Frankfurt am main, HESSE, Allemagne
EUR 63,24
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Ajouter au panierEtat : New. pp. 280.
Vendeur : GreatBookPrices, Columbia, MD, Etats-Unis
EUR 74,31
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Vendeur : GreatBookPrices, Columbia, MD, Etats-Unis
EUR 76,90
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Vendeur : Lucky's Textbooks, Dallas, TX, Etats-Unis
EUR 75,71
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Vendeur : Lucky's Textbooks, Dallas, TX, Etats-Unis
EUR 76,12
Autre deviseQuantité disponible : Plus de 20 disponibles
Ajouter au panierEtat : New.
Edité par Springer International Publishing AG, Cham, 2018
ISBN 10 : 3319816381 ISBN 13 : 9783319816388
Langue: anglais
Vendeur : Grand Eagle Retail, Bensenville, IL, Etats-Unis
EUR 87,76
Autre deviseQuantité disponible : 1 disponible(s)
Ajouter au panierPaperback. Etat : new. Paperback. This book presents methods for investigating whether relationships are linear or nonlinear and for adaptively fitting appropriate models when they are nonlinear. Data analysts will learn how to incorporate nonlinearity in one or more predictor variables into regression models for different types of outcome variables. Such nonlinear dependence is often not considered in applied research, yet nonlinear relationships are common and so need to be addressed. A standard linear analysis can produce misleading conclusions, while a nonlinear analysis can provide novel insights into data, not otherwise possible. A variety of examples of the benefits of modeling nonlinear relationships are presented throughout the book. Methods are covered using what are called fractional polynomials based on real-valued power transformations of primary predictor variables combined with model selection based on likelihood cross-validation. The book covers how to formulate and conduct such adaptive fractional polynomial modeling in the standard, logistic, and Poisson regression contexts with continuous, discrete, and counts outcomes, respectively, either univariate or multivariate. The book also provides a comparison of adaptive modeling to generalized additive modeling (GAM) and multiple adaptive regression splines (MARS) for univariate outcomes. The authors have created customized SAS macros for use in conducting adaptive regression modeling. These macros and code for conducting the analyses discussed in the book are available through the first author's website and online via the books Springer website. Detailed descriptions of how to use these macros and interpret their output appear throughout the book. These methods can be implemented using other programs. This book presents methods for investigating whether relationships are linear or nonlinear and for adaptively fitting appropriate models when they are nonlinear. The book also provides a comparison of adaptive modeling to generalized additive modeling (GAM) and multiple adaptive regression splines (MARS) for univariate outcomes. Shipping may be from multiple locations in the US or from the UK, depending on stock availability.
Vendeur : GreatBookPricesUK, Woodford Green, Royaume-Uni
EUR 71,87
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Ajouter au panierEtat : New.
Vendeur : GreatBookPrices, Columbia, MD, Etats-Unis
EUR 88,04
Autre deviseQuantité disponible : 15 disponible(s)
Ajouter au panierEtat : As New. Unread book in perfect condition.
Vendeur : Ria Christie Collections, Uxbridge, Royaume-Uni
EUR 75,92
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Ajouter au panierEtat : New. In.
Vendeur : Ria Christie Collections, Uxbridge, Royaume-Uni
EUR 75,92
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Ajouter au panierEtat : New. In.
Vendeur : Chiron Media, Wallingford, Royaume-Uni
EUR 75,30
Autre deviseQuantité disponible : 10 disponible(s)
Ajouter au panierPaperback. Etat : New.
Vendeur : Books Puddle, New York, NY, Etats-Unis
EUR 92,16
Autre deviseQuantité disponible : 4 disponible(s)
Ajouter au panierEtat : New. pp. 372.
Edité par Springer International Publishing AG, Cham, 2016
ISBN 10 : 3319339443 ISBN 13 : 9783319339443
Langue: anglais
Vendeur : Grand Eagle Retail, Bensenville, IL, Etats-Unis
Edition originale
EUR 110,81
Autre deviseQuantité disponible : 1 disponible(s)
Ajouter au panierHardcover. Etat : new. Hardcover. This book presents methods for investigating whether relationships are linear or nonlinear and for adaptively fitting appropriate models when they are nonlinear. Data analysts will learn how to incorporate nonlinearity in one or more predictor variables into regression models for different types of outcome variables. Such nonlinear dependence is often not considered in applied research, yet nonlinear relationships are common and so need to be addressed. A standard linear analysis can produce misleading conclusions, while a nonlinear analysis can provide novel insights into data, not otherwise possible. A variety of examples of the benefits of modeling nonlinear relationships are presented throughout the book. Methods are covered using what are called fractional polynomials based on real-valued power transformations of primary predictor variables combined with model selection based on likelihood cross-validation. The book covers how to formulate and conduct such adaptive fractional polynomial modeling in the standard, logistic, and Poisson regression contexts with continuous, discrete, and counts outcomes, respectively, either univariate or multivariate. The book also provides a comparison of adaptive modeling to generalized additive modeling (GAM) and multiple adaptive regression splines (MARS) for univariate outcomes. The authors have created customized SAS macros for use in conducting adaptive regression modeling. These macros and code for conducting the analyses discussed in the book are available through the first author's website and online via the books Springer website. Detailed descriptions of how to use these macros and interpret their output appear throughout the book. These methods can be implemented using other programs. This book presents methods for investigating whether relationships are linear or nonlinear and for adaptively fitting appropriate models when they are nonlinear. The book also provides a comparison of adaptive modeling to generalized additive modeling (GAM) and multiple adaptive regression splines (MARS) for univariate outcomes. Shipping may be from multiple locations in the US or from the UK, depending on stock availability.
Vendeur : GreatBookPricesUK, Woodford Green, Royaume-Uni
EUR 123,11
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Ajouter au panierEtat : As New. Unread book in perfect condition.
Vendeur : Mispah books, Redhill, SURRE, Royaume-Uni
EUR 113,65
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Ajouter au panierHardcover. Etat : Like New. Like New. book.
Vendeur : Revaluation Books, Exeter, Royaume-Uni
EUR 115,91
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Ajouter au panierHardcover. Etat : Brand New. 400 pages. 9.25x6.25x1.00 inches. In Stock.
Vendeur : GreatBookPrices, Columbia, MD, Etats-Unis
EUR 143,75
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Ajouter au panierEtat : As New. Unread book in perfect condition.
Vendeur : Mispah books, Redhill, SURRE, Royaume-Uni
EUR 125,49
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Ajouter au panierPaperback. Etat : New. New. book.
Edité par Springer International Publishing AG, Cham, 2018
ISBN 10 : 3319816381 ISBN 13 : 9783319816388
Langue: anglais
Vendeur : AussieBookSeller, Truganina, VIC, Australie
EUR 147,57
Autre deviseQuantité disponible : 1 disponible(s)
Ajouter au panierPaperback. Etat : new. Paperback. This book presents methods for investigating whether relationships are linear or nonlinear and for adaptively fitting appropriate models when they are nonlinear. Data analysts will learn how to incorporate nonlinearity in one or more predictor variables into regression models for different types of outcome variables. Such nonlinear dependence is often not considered in applied research, yet nonlinear relationships are common and so need to be addressed. A standard linear analysis can produce misleading conclusions, while a nonlinear analysis can provide novel insights into data, not otherwise possible. A variety of examples of the benefits of modeling nonlinear relationships are presented throughout the book. Methods are covered using what are called fractional polynomials based on real-valued power transformations of primary predictor variables combined with model selection based on likelihood cross-validation. The book covers how to formulate and conduct such adaptive fractional polynomial modeling in the standard, logistic, and Poisson regression contexts with continuous, discrete, and counts outcomes, respectively, either univariate or multivariate. The book also provides a comparison of adaptive modeling to generalized additive modeling (GAM) and multiple adaptive regression splines (MARS) for univariate outcomes. The authors have created customized SAS macros for use in conducting adaptive regression modeling. These macros and code for conducting the analyses discussed in the book are available through the first author's website and online via the books Springer website. Detailed descriptions of how to use these macros and interpret their output appear throughout the book. These methods can be implemented using other programs. This book presents methods for investigating whether relationships are linear or nonlinear and for adaptively fitting appropriate models when they are nonlinear. The book also provides a comparison of adaptive modeling to generalized additive modeling (GAM) and multiple adaptive regression splines (MARS) for univariate outcomes. Shipping may be from our Sydney, NSW warehouse or from our UK or US warehouse, depending on stock availability.
Edité par Springer International Publishing AG, Cham, 2016
ISBN 10 : 3319339443 ISBN 13 : 9783319339443
Langue: anglais
Vendeur : AussieBookSeller, Truganina, VIC, Australie
Edition originale
EUR 302,97
Autre deviseQuantité disponible : 1 disponible(s)
Ajouter au panierHardcover. Etat : new. Hardcover. This book presents methods for investigating whether relationships are linear or nonlinear and for adaptively fitting appropriate models when they are nonlinear. Data analysts will learn how to incorporate nonlinearity in one or more predictor variables into regression models for different types of outcome variables. Such nonlinear dependence is often not considered in applied research, yet nonlinear relationships are common and so need to be addressed. A standard linear analysis can produce misleading conclusions, while a nonlinear analysis can provide novel insights into data, not otherwise possible. A variety of examples of the benefits of modeling nonlinear relationships are presented throughout the book. Methods are covered using what are called fractional polynomials based on real-valued power transformations of primary predictor variables combined with model selection based on likelihood cross-validation. The book covers how to formulate and conduct such adaptive fractional polynomial modeling in the standard, logistic, and Poisson regression contexts with continuous, discrete, and counts outcomes, respectively, either univariate or multivariate. The book also provides a comparison of adaptive modeling to generalized additive modeling (GAM) and multiple adaptive regression splines (MARS) for univariate outcomes. The authors have created customized SAS macros for use in conducting adaptive regression modeling. These macros and code for conducting the analyses discussed in the book are available through the first author's website and online via the books Springer website. Detailed descriptions of how to use these macros and interpret their output appear throughout the book. These methods can be implemented using other programs. This book presents methods for investigating whether relationships are linear or nonlinear and for adaptively fitting appropriate models when they are nonlinear. The book also provides a comparison of adaptive modeling to generalized additive modeling (GAM) and multiple adaptive regression splines (MARS) for univariate outcomes. Shipping may be from our Sydney, NSW warehouse or from our UK or US warehouse, depending on stock availability.
Vendeur : Majestic Books, Hounslow, Royaume-Uni
EUR 94,83
Autre deviseQuantité disponible : 4 disponible(s)
Ajouter au panierEtat : New. Print on Demand pp. 372.
Vendeur : Biblios, Frankfurt am main, HESSE, Allemagne
EUR 95,92
Autre deviseQuantité disponible : 4 disponible(s)
Ajouter au panierEtat : New. PRINT ON DEMAND pp. 372.
Vendeur : Brook Bookstore On Demand, Napoli, NA, Italie
EUR 62,23
Autre deviseQuantité disponible : Plus de 20 disponibles
Ajouter au panierEtat : new. Questo è un articolo print on demand.
Edité par Springer International Publishing, 2016
ISBN 10 : 3319339443 ISBN 13 : 9783319339443
Langue: anglais
Vendeur : moluna, Greven, Allemagne
EUR 64,33
Autre deviseQuantité disponible : Plus de 20 disponibles
Ajouter au panierEtat : New. Dieser Artikel ist ein Print on Demand Artikel und wird nach Ihrer Bestellung fuer Sie gedruckt. Provides insight into modeling of nonlinear relationships and also justifications for when to use them, thereby providing novel insights about relationshipsAddresses not only adaptive generation of additive models but also of .
Edité par Springer International Publishing, 2018
ISBN 10 : 3319816381 ISBN 13 : 9783319816388
Langue: anglais
Vendeur : moluna, Greven, Allemagne
EUR 64,33
Autre deviseQuantité disponible : Plus de 20 disponibles
Ajouter au panierEtat : New. Dieser Artikel ist ein Print on Demand Artikel und wird nach Ihrer Bestellung fuer Sie gedruckt. Provides insight into modeling of nonlinear relationships and also justifications for when to use them, thereby providing novel insights about relationshipsAddresses not only adaptive generation of additive models but also of .