Isbn: 9783319327884 - prior processes and their applications: nonparametric bayesian estimation (13 risultati)

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  • Lingua: Inglese

    Editore: Springer, 2016

    3319327887 / 9783319327884

    Serie: Libro 142 di 160 - Springer Series in Statistics

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  • Lingua: Inglese

    Editore: Springer, 2016

    3319327887 / 9783319327884

    Serie: Libro 142 di 160 - Springer Series in Statistics

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    Da: Ria Christie Collections, Uxbridge, Regno UnitoRia Christie Collections

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    Condizione: New. In English.

  • Lingua: Inglese

    Editore: Springer, 2016

    3319327887 / 9783319327884

    Serie: Libro 142 di 160 - Springer Series in Statistics

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  • Lingua: Inglese

    Editore: Springer Verlag, 2016

    3319327887 / 9783319327884

    Serie: Libro 142 di 160 - Springer Series in Statistics

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    Da: Revaluation Books, Exeter, Regno UnitoRevaluation Books

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    Hardcover. Condizione: Brand New. 2nd edition. 348 pages. 9.50x6.25x1.00 inches. In Stock.

  • Lingua: Inglese

    Editore: Springer, 2016

    3319327887 / 9783319327884

    Serie: Libro 142 di 160 - Springer Series in Statistics

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    Da: Mispah books, Redhill, SURRE, Regno UnitoMispah books

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  • Lingua: Inglese

    Editore: Springer, 2016

    3319327887 / 9783319327884

    Serie: Libro 142 di 160 - Springer Series in Statistics

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  • Lingua: Inglese

    Editore: Springer International Publishing Aug 2016, 2016

    3319327887 / 9783319327884

    Serie: Libro 142 di 160 - Springer Series in Statistics

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    Da: BuchWeltWeit Ludwig Meier e.K., Bergisch Gladbach, GermaniaBuchWeltWeit Ludwig Meier e.K.

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    EUR 128,39

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    Buch. Condizione: Neu. This item is printed on demand - it takes 3-4 days longer - Neuware -This book presents a systematic and comprehensive treatment of various prior processes that have been developed over the past four decades for dealing with Bayesian approach to solving selected nonparametric inference problems. This revised edition has been substantially expanded to reflect the current interest in this area. After an overview of different prior processes, it examines the now pre-eminent Dirichlet process and its variants including hierarchical processes, then addresses new processes such as dependent Dirichlet, local Dirichlet, time-varying and spatial processes, all of which exploit the countable mixture representation of the Dirichlet process. It subsequently discusses various neutral to right type processes, including gamma and extended gamma, beta and beta-Stacy processes, and then describes the Chinese Restaurant, Indian Buffet and infinite gamma-Poisson processes, which prove to be very useful in areas such as machine learning, information retrieval and featural modeling. Tailfree and Polya tree and their extensions form a separate chapter, while the last two chapters present the Bayesian solutions to certain estimation problems pertaining to the distribution function and its functional based on complete data as well as right censored data. Because of the conjugacy property of some of these processes, most solutions are presented in closed form. However, the current interest in modeling and treating large-scale and complex data also poses a problem - the posterior distribution, which is essential to Bayesian analysis, is invariably not in a closed form, making it necessary to resort to simulation. Accordingly, the book also introduces several computational procedures, such as the Gibbs sampler, Blocked Gibbs sampler and slice sampling, highlighting essential steps of algorithms while discussing specific models. In addition, it features crucial steps of proofs and derivations, explains the relationships between different processes and provides further clarifications to promote a deeper understanding. Lastly, it includes a comprehensive list of references, equipping readers to explore further on their own. 348 pp. Englisch.…

  • Lingua: Inglese

    Editore: Springer International Publishing, 2016

    3319327887 / 9783319327884

    Serie: Libro 142 di 160 - Springer Series in Statistics

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    Da: moluna, Greven, Germaniamoluna

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    Gebunden. Condizione: New. Dieser Artikel ist ein Print on Demand Artikel und wird nach Ihrer Bestellung fuer Sie gedruckt. Presents a systematic and comprehensive treatment of various prior processesProvides valuable&nbspresource for nonparametric Bayesian analysis of big dataIncludes a section on machine learningShow.…

  • Lingua: Inglese

    Editore: Palgrave Macmillan, 2016

    3319327887 / 9783319327884

    Serie: Libro 142 di 160 - Springer Series in Statistics

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    Da: AHA-BUCH GmbH, Einbeck, GermaniaAHA-BUCH GmbH

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    EUR 140,65

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    Buch. Condizione: Neu. nach der Bestellung gedruckt Neuware - Printed after ordering - This book presents a systematic and comprehensive treatment of various prior processes that have been developed over the past four decades for dealing with Bayesian approach to solving selected nonparametric inference problems. This revised edition has been substantially expanded to reflect the current interest in this area. After an overview of different prior processes, it examines the now pre-eminent Dirichlet process and its variants including hierarchical processes, then addresses new processes such as dependent Dirichlet, local Dirichlet, time-varying and spatial processes, all of which exploit the countable mixture representation of the Dirichlet process. It subsequently discusses various neutral to right type processes, including gamma and extended gamma, beta and beta-Stacy processes, and then describes the Chinese Restaurant, Indian Buffet and infinite gamma-Poisson processes, which prove to be very useful in areas such as machine learning, information retrieval and featural modeling. Tailfree and Polya tree and their extensions form a separate chapter, while the last two chapters present the Bayesian solutions to certain estimation problems pertaining to the distribution function and its functional based on complete data as well as right censored data. Because of the conjugacy property of some of these processes, most solutions are presented in closed form. However, the current interest in modeling and treating large-scale and complex data also poses a problem - the posterior distribution, which is essential to Bayesian analysis, is invariably not in a closed form, making it necessary to resort to simulation. Accordingly, the book also introduces several computational procedures, such as the Gibbs sampler, Blocked Gibbs sampler and slice sampling, highlighting essential steps of algorithms while discussing specific models. In addition, it features crucial steps of proofs and derivations, explains the relationships between different processes and provides further clarifications to promote a deeper understanding. Lastly, it includes a comprehensive list of references, equipping readers to explore further on their own.…

  • Lingua: Inglese

    Editore: Springer, 2016

    3319327887 / 9783319327884

    Serie: Libro 142 di 160 - Springer Series in Statistics

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    Da: Majestic Books, Hounslow, Regno UnitoMajestic Books

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  • Lingua: Inglese

    Editore: Springer, Palgrave Macmillan Aug 2016, 2016

    3319327887 / 9783319327884

    Serie: Libro 142 di 160 - Springer Series in Statistics

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    Da: buchversandmimpf2000, Emtmannsberg, BAYE, Germaniabuchversandmimpf2000

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    EUR 128,39

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    Buch. Condizione: Neu. This item is printed on demand - Print on Demand Titel. Neuware -This book presents a systematic and comprehensive treatment of various prior processes that have been developed over the past four decades for dealing with Bayesian approach to solving selected nonparametric inference problems. This revised edition has been substantially expanded to reflect the current interest in this area. After an overview of different prior processes, it examines the now pre-eminent Dirichlet process and its variants including hierarchical processes, then addresses new processes such as dependent Dirichlet, local Dirichlet, time-varying and spatial processes, all of which exploit the countable mixture representation of the Dirichlet process. It subsequently discusses various neutral to right type processes, including gamma and extended gamma, beta and beta-Stacy processes, and then describes the Chinese Restaurant, Indian Buffet and infinite gamma-Poisson processes, which prove to be very useful in areas such as machine learning, information retrieval and featural modeling. Tailfree and Polya tree and their extensions form a separate chapter, while the last two chapters present the Bayesian solutions to certain estimation problems pertaining to the distribution function and its functional based on complete data as well as right censored data. Because of the conjugacy property of some of these processes, most solutions are presented in closed form.However, the current interest in modeling and treating large-scale and complex data also poses a problem ¿ the posterior distribution, which is essential to Bayesian analysis, is invariably not in a closed form, making it necessary to resort to simulation. Accordingly, the book also introduces several computational procedures, such as the Gibbs sampler, Blocked Gibbs sampler and slice sampling, highlighting essential steps of algorithms while discussing specific models. In addition, it features crucial steps of proofs and derivations, explains the relationships between different processes and provides further clarifications to promote a deeper understanding. Lastly, it includes a comprehensive list of references, equipping readers to explore further on their own.Springer-Verlag KG, Sachsenplatz 4-6, 1201 Wien 348 pp. Englisch.…

  • Lingua: Inglese

    Editore: Springer, 2016

    3319327887 / 9783319327884

    Serie: Libro 142 di 160 - Springer Series in Statistics

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    Da: Biblios, frankfurt am main, HESSE, GermaniaBiblios

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    EUR 183,19

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