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Bayesian Econometric Methods (Hardcover, 2nd Revised edition): Joshua Chan, Gary Koop, Dale J. Poirier, Justin L. Tobias Bayesian Econometric Methods (Hardcover, 2nd Revised edition)
Joshua Chan, Gary Koop, Dale J. Poirier, Justin L. Tobias
R3,461 R3,244 Discovery Miles 32 440 Save R217 (6%) Ships in 12 - 17 working days

Bayesian Econometric Methods examines principles of Bayesian inference by posing a series of theoretical and applied questions and providing detailed solutions to those questions. This second edition adds extensive coverage of models popular in finance and macroeconomics, including state space and unobserved components models, stochastic volatility models, ARCH, GARCH, and vector autoregressive models. The authors have also added many new exercises related to Gibbs sampling and Markov Chain Monte Carlo (MCMC) methods. The text includes regression-based and hierarchical specifications, models based upon latent variable representations, and mixture and time series specifications. MCMC methods are discussed and illustrated in detail - from introductory applications to those at the current research frontier - and MATLAB (R) computer programs are provided on the website accompanying the text. Suitable for graduate study in economics, the text should also be of interest to students studying statistics, finance, marketing, and agricultural economics.

Bayesian Econometric Methods (Paperback, 2nd Revised edition): Joshua Chan, Gary Koop, Dale J. Poirier, Justin L. Tobias Bayesian Econometric Methods (Paperback, 2nd Revised edition)
Joshua Chan, Gary Koop, Dale J. Poirier, Justin L. Tobias
R1,605 Discovery Miles 16 050 Ships in 9 - 15 working days

Bayesian Econometric Methods examines principles of Bayesian inference by posing a series of theoretical and applied questions and providing detailed solutions to those questions. This second edition adds extensive coverage of models popular in finance and macroeconomics, including state space and unobserved components models, stochastic volatility models, ARCH, GARCH, and vector autoregressive models. The authors have also added many new exercises related to Gibbs sampling and Markov Chain Monte Carlo (MCMC) methods. The text includes regression-based and hierarchical specifications, models based upon latent variable representations, and mixture and time series specifications. MCMC methods are discussed and illustrated in detail - from introductory applications to those at the current research frontier - and MATLAB (R) computer programs are provided on the website accompanying the text. Suitable for graduate study in economics, the text should also be of interest to students studying statistics, finance, marketing, and agricultural economics.

Bayesian Multivariate Time Series Methods for Empirical Macroeconomics (Paperback, New): Gary Koop, Dimitris Korobilis Bayesian Multivariate Time Series Methods for Empirical Macroeconomics (Paperback, New)
Gary Koop, Dimitris Korobilis
R1,792 Discovery Miles 17 920 Ships in 10 - 15 working days

Bayesian Multivariate Time Series Methods for Empirical Macroeconomics provides a survey of the Bayesian methods used in modern empirical macroeconomics. These models have been developed to address the fact that most questions of interest to empirical macroeconomists involve several variables and must be addressed using multivariate time series methods. Many different multivariate time series models have been used in macroeconomics, but Vector Autoregressive (VAR) models have been among the most popular. Bayesian Multivariate Time Series Methods for Empirical Macroeconomics reviews and extends the Bayesian literature on VARs, TVP-VARs and TVP-FAVARs with a focus on the practitioner. The authors go beyond simply defining each model, but specify how to use them in practice, discuss the advantages and disadvantages of each and offer tips on when and why each model can be used.

The Oxford Handbook of Bayesian Econometrics (Paperback): John Geweke, Gary Koop, Herman Van Dijk The Oxford Handbook of Bayesian Econometrics (Paperback)
John Geweke, Gary Koop, Herman Van Dijk
R1,778 Discovery Miles 17 780 Ships in 10 - 15 working days

Bayesian econometric methods have enjoyed an increase in popularity in recent years. Econometricians, empirical economists, and policymakers are increasingly making use of Bayesian methods. This handbook is a single source for researchers and policymakers wanting to learn about Bayesian methods in specialized fields, and for graduate students seeking to make the final step from textbook learning to the research frontier. It contains contributions by leading Bayesians on the latest developments in their specific fields of expertise. The volume provides broad coverage of the application of Bayesian econometrics in the major fields of economics and related disciplines, including macroeconomics, microeconomics, finance, and marketing. It reviews the state of the art in Bayesian econometric methodology, with chapters on posterior simulation and Markov chain Monte Carlo methods, Bayesian nonparametric techniques, and the specialized tools used by Bayesian time series econometricians such as state space models and particle filtering. It also includes chapters on Bayesian principles and methodology.

The Oxford Handbook of Bayesian Econometrics (Hardcover): John Geweke, Gary Koop, Herman Van Dijk The Oxford Handbook of Bayesian Econometrics (Hardcover)
John Geweke, Gary Koop, Herman Van Dijk
R5,280 Discovery Miles 52 800 Ships in 10 - 15 working days

Bayesian econometric methods have enjoyed an increase in popularity in recent years. Econometricians, empirical economists, and policymakers are increasingly making use of Bayesian methods. This handbook is a single source for researchers and policymakers wanting to learn about Bayesian methods in specialized fields, and for graduate students seeking to make the final step from textbook learning to the research frontier. It contains contributions by leading Bayesians on the latest developments in their specific fields of expertise. The volume provides broad coverage of the application of Bayesian econometrics in the major fields of economics and related disciplines, including macroeconomics, microeconomics, finance, and marketing. It reviews the state of the art in Bayesian econometric methodology, with chapters on posterior simulation and Markov chain Monte Carlo methods, Bayesian nonparametric techniques, and the specialized tools used by Bayesian time series econometricians such as state space models and particle filtering. It also includes chapters on Bayesian principles and methodology.

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