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About Bayesian Regression Modeling with INLA

This book addresses the applications of extensively used regression models under a Bayesian framework. It emphasizes efficient Bayesian inference through integrated nested Laplace approximations (INLA) and real data analysis using R. The INLA method directly computes very accurate approximations to the posterior marginal distributions and is a promising alternative to Markov chain Monte Carlo (MCMC) algorithms, which come with a range of issues that impede practical use of Bayesian models.

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  • Language:
  • English
  • ISBN:
  • 9781498727259
  • Binding:
  • Hardback
  • Pages:
  • 312
  • Published:
  • February 15, 2018
  • Dimensions:
  • 242x164x21 mm.
  • Weight:
  • 592 g.
  In stock
Delivery: 3-5 business days
Expected delivery: December 1, 2024

Description of Bayesian Regression Modeling with INLA

This book addresses the applications of extensively used regression models under a Bayesian framework. It emphasizes efficient Bayesian inference through integrated nested Laplace approximations (INLA) and real data analysis using R. The INLA method directly computes very accurate approximations to the posterior marginal distributions and is a promising alternative to Markov chain Monte Carlo (MCMC) algorithms, which come with a range of issues that impede practical use of Bayesian models.

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