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Bayesian Spatial Modelling with R-INLA [推广有奖]

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楼主
ReneeBK 发表于 2015-3-20 09:04:45 |AI写论文

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Authors:

Finn Lindgren, Håvard Rue

Title:

[download]
(699)
Bayesian Spatial Modelling with R-INLA

Reference:

Vol. 63, Issue 19, Feb 2015Submitted 2013-06-05, Accepted 2014-09-30

Type:

Article

Abstract:

The principles behind the interface to continuous domain spatial models in the R- INLA software package for R are described. The integrated nested Laplace approximation (INLA) approach proposed by Rue, Martino, and Chopin (2009) is a computationally effective alternative to MCMC for Bayesian inference. INLA is designed for latent Gaussian models, a very wide and flexible class of models ranging from (generalized) linear mixed to spatial and spatio-temporal models. Combined with the stochastic partial differential equation approach (SPDE, Lindgren, Rue, and Lindström 2011), one can accommodate all kinds of geographically referenced data, including areal and geostatistical ones, as well as spatial point process data. The implementation interface covers stationary spatial mod- els, non-stationary spatial models, and also spatio-temporal models, and is applicable in epidemiology, ecology, environmental risk assessment, as well as general geostatistics.

Paper:

[download]
(699)
Bayesian Spatial Modelling with R-INLA
(application/pdf, 868.5 KB)

Supplements:

[download]
(66)
v63i19-code.zip: R example code from the manuscript
(application/zip, 5.2 KB)

Resources:

BibTeX | OAI


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