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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.
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.
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 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.
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