Spatial modeling with spatially varying coefficient processes

被引:417
作者
Gelfand, AE [1 ]
Kim, HJ
Sirmans, CF
Banerjee, S
机构
[1] Duke Univ, Inst Stat & Decis Sci, Durham, NC 27708 USA
[2] Univ Oulu, Dept Math Sci, Oulu, Finland
[3] Univ Connecticut, Ctr Real Estate & Urban Econ Studies, Storrs, CT 06269 USA
[4] Univ Minnesota, Div Biostat, Minneapolis, MN 55455 USA
关键词
Bayesian framework; multivariate spatial processes; prediction; spatio-temporal modeling; stationary Gaussian process;
D O I
10.1198/016214503000170
中图分类号
O21 [概率论与数理统计]; C8 [统计学];
学科分类号
020208 ; 070103 ; 0714 ;
摘要
In many applications, the objective is to build regression models to explain a response variable over a region of interest under the assumption that the responses are spatially correlated. In nearly all of this work, the regression coefficients are assumed to be constant over the region. However, in some applications, coefficients are expected to vary at the local or subregional level. Here we focus on the local case. Although parametric modeling of the spatial surface for the coefficient is possible, here we argue that it is more natural and flexible to view the surface as a realization from a spatial process. We show how such modeling can be formalized in the context of Gaussian responses providing attractive interpretation in terms of both random effects and explaining residuals. We also offer extensions to generalized linear models and to spatio-temporal setting. We illustrate both static and dynamic modeling with a dataset that attempts to explain (log) selling price of single-family houses.
引用
收藏
页码:387 / 396
页数:10
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