Editore: Springer Science - Business Media, LLC, USA, 2007
Lingua: Inglese
Da: Peace of Mind Bookstore, Tulsa, OK, U.S.A.
EUR 21,37
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Aggiungi al carrelloHardcover. Condizione: Very Good+. Covers the complete process of Bayesian statistical analysis in great detail from the development of a model through the process of making statistical inference. Key feature of this book is that it covers models that are most commonly used in social science research including the linear regression model, generalized linear models, hierarchical models and multivariate regression models. Professional book seller with storefront since 1975. All orders carefully packaged and promptly shipped.
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EUR 27,39
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Aggiungi al carrelloCondizione: very_good. Gently read. May have name of previous ownership, or ex-library edition. Binding tight; spine straight and smooth, with no creasing; covers clean and crisp. Minimal signs of handling or shelving. 100% GUARANTEE! Shipped with delivery confirmation, if you're not satisfied with purchase please return item for full refund. Ships USPS Media Mail.
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Da: Bay State Book Company, North Smithfield, RI, U.S.A.
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Aggiungi al carrelloCondizione: good. The book is in good condition with all pages and cover intact, including the dust jacket if originally issued. The spine may show light wear. Pages may contain some notes or highlighting, and there might be a "From the library of" label. Boxed set packaging, shrink wrap, or included media like CDs may be missing.
Da: World of Books (was SecondSale), Montgomery, IL, U.S.A.
EUR 30,30
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Da: bmyguest books, Toronto, ON, Canada
EUR 22,95
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Aggiungi al carrelloHardcover. Condizione: Good. 357 Pages With The Index. Textbook Binding. Creased Pages, Used Book,books are NOT signed. We will state signed at the description section. we confirm they are signed via email or stated in the description box. - Specializing in academic, collectiblle and historically significant, providing the utmost quality and customer service satisfaction. For any questions feel free to email us.
Da: thebookforest.com, San Rafael, CA, U.S.A.
EUR 35,61
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Aggiungi al carrelloCondizione: LikeNew. Text block, wraps and binding are in fine, like new condition. Absolutely no markings of any kind. Well packaged and promptly shipped from California. US veteran operated.
Da: World of Books (was SecondSale), Montgomery, IL, U.S.A.
EUR 68,21
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Da: GreatBookPrices, Columbia, MD, U.S.A.
EUR 123,26
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Editore: Springer-Verlag New York Inc., New York, NY, 2010
ISBN 10: 1441924345 ISBN 13: 9781441924346
Lingua: Inglese
Da: Grand Eagle Retail, Bensenville, IL, U.S.A.
Prima edizione
EUR 125,62
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Aggiungi al carrelloPaperback. Condizione: new. Paperback. "Introduction to Applied Bayesian Statistics and Estimation for Social Scientists" covers the complete process of Bayesian statistical analysis in great detail from the development of a model through the process of making statistical inference. The key feature of this book is that it covers models that are most commonly used in social science research - including the linear regression model, generalized linear models, hierarchical models, and multivariate regression models - and it thoroughly develops each real-data example in painstaking detail.The first part of the book provides a detailed introduction to mathematical statistics and the Bayesian approach to statistics, as well as a thorough explanation of the rationale for using simulation methods to construct summaries of posterior distributions. Markov chain Monte Carlo (MCMC) methods - including the Gibbs sampler and the Metropolis-Hastings algorithm - are then introduced as general methods for simulating samples from distributions. Extensive discussion of programming MCMC algorithms, monitoring their performance, and improving them is provided before turning to the larger examples involving real social science models and data. The key feature of this book is that it covers models that are most commonly used in social science research - including the linear regression model, generalized linear models, hierarchical models, and multivariate regression models - and it thoroughly develops each real-data example in painstaking detail. Shipping may be from multiple locations in the US or from the UK, depending on stock availability.
Da: Lucky's Textbooks, Dallas, TX, U.S.A.
EUR 122,11
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Da: Ria Christie Collections, Uxbridge, Regno Unito
EUR 123,63
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Da: Toscana Books, AUSTIN, TX, U.S.A.
EUR 156,08
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Aggiungi al carrelloPaperback. Condizione: new. Excellent Condition.Excels in customer satisfaction, prompt replies, and quality checks.
Da: Books Puddle, New York, NY, U.S.A.
EUR 169,20
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Aggiungi al carrelloCondizione: New. pp. 388.
Da: GreatBookPrices, Columbia, MD, U.S.A.
EUR 188,15
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Editore: Springer-Verlag New York Inc., New York, NY, 2007
ISBN 10: 038771264X ISBN 13: 9780387712642
Lingua: Inglese
Da: Grand Eagle Retail, Bensenville, IL, U.S.A.
EUR 190,51
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Aggiungi al carrelloHardcover. Condizione: new. Hardcover. "Introduction to Applied Bayesian Statistics and Estimation for Social Scientists" covers the complete process of Bayesian statistical analysis in great detail from the development of a model through the process of making statistical inference. The key feature of this book is that it covers models that are most commonly used in social science research - including the linear regression model, generalized linear models, hierarchical models, and multivariate regression models - and it thoroughly develops each real-data example in painstaking detail.The first part of the book provides a detailed introduction to mathematical statistics and the Bayesian approach to statistics, as well as a thorough explanation of the rationale for using simulation methods to construct summaries of posterior distributions. Markov chain Monte Carlo (MCMC) methods - including the Gibbs sampler and the Metropolis-Hastings algorithm - are then introduced as general methods for simulating samples from distributions. Extensive discussion of programming MCMC algorithms, monitoring their performance, and improving them is provided before turning to the larger examples involving real social science models and data. Introduction to Applied Bayesian Statistics and Estimation for Social Scientists Shipping may be from multiple locations in the US or from the UK, depending on stock availability.
Da: Lucky's Textbooks, Dallas, TX, U.S.A.
EUR 187,01
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Da: Ria Christie Collections, Uxbridge, Regno Unito
EUR 177,64
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Editore: Springer New York, Springer US Nov 2010, 2010
ISBN 10: 1441924345 ISBN 13: 9781441924346
Lingua: Inglese
Da: buchversandmimpf2000, Emtmannsberg, BAYE, Germania
EUR 128,39
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Aggiungi al carrelloTaschenbuch. Condizione: Neu. Neuware -'Introduction to Applied Bayesian Statistics and Estimation for Social Scientists' covers the complete process of Bayesian statistical analysis in great detail from the development of a model through the process of making statistical inference. The key feature of this book is that it covers models that are most commonly used in social science research - including the linear regression model, generalized linear models, hierarchical models, and multivariate regression models - and it thoroughly develops each real-data example in painstaking detail.The first part of the book provides a detailed introduction to mathematical statistics and the Bayesian approach to statistics, as well as a thorough explanation of the rationale for using simulation methods to construct summaries of posterior distributions. Markov chain Monte Carlo (MCMC) methods - including the Gibbs sampler and the Metropolis-Hastings algorithm - are then introduced as general methods for simulating samples from distributions. Extensive discussion of programming MCMC algorithms, monitoring their performance, and improving them is provided before turning to the larger examples involving real social science models and data.Springer Verlag GmbH, Tiergartenstr. 17, 69121 Heidelberg 388 pp. Englisch.
Editore: Springer New York, Springer US, 2010
ISBN 10: 1441924345 ISBN 13: 9781441924346
Lingua: Inglese
Da: AHA-BUCH GmbH, Einbeck, Germania
EUR 132,72
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Aggiungi al carrelloTaschenbuch. Condizione: Neu. Druck auf Anfrage Neuware - Printed after ordering - 'Introduction to Applied Bayesian Statistics and Estimation for Social Scientists' covers the complete process of Bayesian statistical analysis in great detail from the development of a model through the process of making statistical inference. The key feature of this book is that it covers models that are most commonly used in social science research - including the linear regression model, generalized linear models, hierarchical models, and multivariate regression models - and it thoroughly develops each real-data example in painstaking detail.The first part of the book provides a detailed introduction to mathematical statistics and the Bayesian approach to statistics, as well as a thorough explanation of the rationale for using simulation methods to construct summaries of posterior distributions. Markov chain Monte Carlo (MCMC) methods - including the Gibbs sampler and the Metropolis-Hastings algorithm - are then introduced as general methods for simulating samples from distributions. Extensive discussion of programming MCMC algorithms, monitoring their performance, and improving them is provided before turning to the larger examples involving real social science models and data.
Da: Revaluation Books, Exeter, Regno Unito
EUR 181,75
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Aggiungi al carrelloPaperback. Condizione: Brand New. 364 pages. 8.80x6.00x1.10 inches. In Stock.
Da: Mispah books, Redhill, SURRE, Regno Unito
EUR 188,78
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Aggiungi al carrelloPaperback. Condizione: Like New. Like New. book.
Da: GreatBookPrices, Columbia, MD, U.S.A.
EUR 221,82
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Da: GreatBookPrices, Columbia, MD, U.S.A.
EUR 221,90
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Da: Books Puddle, New York, NY, U.S.A.
EUR 241,43
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Aggiungi al carrelloCondizione: New. pp. 388.
Da: moluna, Greven, Germania
EUR 191,34
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Aggiungi al carrelloGebunden. Condizione: New. First book written at an introductory level for social scientists interested in learning about MCMCThis book outlines Bayesian statistical analysis in great detail, from the development of a model through the process of making statistical inference. .
Editore: Springer-Verlag New York Inc., New York, NY, 2010
ISBN 10: 1441924345 ISBN 13: 9781441924346
Lingua: Inglese
Da: AussieBookSeller, Truganina, VIC, Australia
Prima edizione
EUR 223,83
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Aggiungi al carrelloPaperback. Condizione: new. Paperback. "Introduction to Applied Bayesian Statistics and Estimation for Social Scientists" covers the complete process of Bayesian statistical analysis in great detail from the development of a model through the process of making statistical inference. The key feature of this book is that it covers models that are most commonly used in social science research - including the linear regression model, generalized linear models, hierarchical models, and multivariate regression models - and it thoroughly develops each real-data example in painstaking detail.The first part of the book provides a detailed introduction to mathematical statistics and the Bayesian approach to statistics, as well as a thorough explanation of the rationale for using simulation methods to construct summaries of posterior distributions. Markov chain Monte Carlo (MCMC) methods - including the Gibbs sampler and the Metropolis-Hastings algorithm - are then introduced as general methods for simulating samples from distributions. Extensive discussion of programming MCMC algorithms, monitoring their performance, and improving them is provided before turning to the larger examples involving real social science models and data. The key feature of this book is that it covers models that are most commonly used in social science research - including the linear regression model, generalized linear models, hierarchical models, and multivariate regression models - and it thoroughly develops each real-data example in painstaking detail. Shipping may be from our Sydney, NSW warehouse or from our UK or US warehouse, depending on stock availability.
Da: AHA-BUCH GmbH, Einbeck, Germania
EUR 188,08
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Aggiungi al carrelloBuch. Condizione: Neu. Druck auf Anfrage Neuware - Printed after ordering - 'Introduction to Applied Bayesian Statistics and Estimation for Social Scientists' covers the complete process of Bayesian statistical analysis in great detail from the development of a model through the process of making statistical inference. The key feature of this book is that it covers models that are most commonly used in social science research - including the linear regression model, generalized linear models, hierarchical models, and multivariate regression models - and it thoroughly develops each real-data example in painstaking detail.The first part of the book provides a detailed introduction to mathematical statistics and the Bayesian approach to statistics, as well as a thorough explanation of the rationale for using simulation methods to construct summaries of posterior distributions. Markov chain Monte Carlo (MCMC) methods - including the Gibbs sampler and the Metropolis-Hastings algorithm - are then introduced as general methods for simulating samples from distributions. Extensive discussion of programming MCMC algorithms, monitoring their performance, and improving them is provided before turning to the larger examples involving real social science models and data.
Da: Toscana Books, AUSTIN, TX, U.S.A.
EUR 280,79
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Aggiungi al carrelloHardcover. Condizione: new. Excellent Condition.Excels in customer satisfaction, prompt replies, and quality checks.
Editore: Springer-Verlag New York Inc., New York, NY, 2007
ISBN 10: 038771264X ISBN 13: 9780387712642
Lingua: Inglese
Da: AussieBookSeller, Truganina, VIC, Australia
EUR 352,54
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Aggiungi al carrelloHardcover. Condizione: new. Hardcover. "Introduction to Applied Bayesian Statistics and Estimation for Social Scientists" covers the complete process of Bayesian statistical analysis in great detail from the development of a model through the process of making statistical inference. The key feature of this book is that it covers models that are most commonly used in social science research - including the linear regression model, generalized linear models, hierarchical models, and multivariate regression models - and it thoroughly develops each real-data example in painstaking detail.The first part of the book provides a detailed introduction to mathematical statistics and the Bayesian approach to statistics, as well as a thorough explanation of the rationale for using simulation methods to construct summaries of posterior distributions. Markov chain Monte Carlo (MCMC) methods - including the Gibbs sampler and the Metropolis-Hastings algorithm - are then introduced as general methods for simulating samples from distributions. Extensive discussion of programming MCMC algorithms, monitoring their performance, and improving them is provided before turning to the larger examples involving real social science models and data. Introduction to Applied Bayesian Statistics and Estimation for Social Scientists Shipping may be from our Sydney, NSW warehouse or from our UK or US warehouse, depending on stock availability.