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Bayesian Forecasting And Dynamic Models eBook

de Mike West e Jeff Harrison
idioma: inglês
Editor: SPRINGER NEW YORK, junho de 2013 ‧
95,40€
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DISPONIBILIDADE IMEDIATA
Ebook para ADE
In this book we are concerned with Bayesian learning and forecast­ ing in dynamic environments. We describe the structure and theory of classes of dynamic models, and their uses in Bayesian forecasting. The principles, models and methods of Bayesian forecasting have been developed extensively during the last twenty years. This devel­ opment has involved thorough investigation of mathematical and sta­ tistical aspects of forecasting models and related techniques. With this has come experience with application in a variety of areas in commercial and industrial, scientific and socio-economic fields. In­ deed much of the technical development has been driven by the needs of forecasting practitioners. As a result, there now exists a relatively complete statistical and mathematical framework, although much of this is either not properly documented or not easily accessible. Our primary goals in writing this book have been to present our view of this approach to modelling and forecasting, and to provide a rea­ sonably complete text for advanced university students and research workers. The text is primarily intended for advanced undergraduate and postgraduate students in statistics and mathematics. In line with this objective we present thorough discussion of mathematical and statistical features of Bayesian analyses of dynamic models, with illustrations, examples and exercises in each Chapter.

Bayesian Forecasting And Dynamic Models

de Mike West e Jeff Harrison

Propriedade Descrição
ISBN: 9781475793659
Editor: SPRINGER NEW YORK
Data de Lançamento: junho de 2013
Idioma: Inglês
Tipo de produto: eBook
Formato e Compatibilidade: PDF para ADE
Coleção: Springer Series In Statistics
Classificação Temática: eBooks em Inglês > Ciências Exatas e Naturais > Matemática
EAN: 9781475793659

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