MULTIVARIATE SPATIAL INTERPOLATION AND EXPOSURE TO AIR-POLLUTANTS

被引:126
作者
BROWN, PJ
LE, ND
ZIDEK, JV
机构
[1] UNIV LIVERPOOL,DEPT STAT & COMPUTAT MATH,LIVERPOOL L69 3BX,ENGLAND
[2] BRITISH COLUMBIA CANC CONTROL AGCY,DEPT EPIDEMIOL,VANCOUVER,BC V5Z 4E6,CANADA
[3] UNIV BRITISH COLUMBIA,DEPT STAT,VANCOUVER,BC V6T 1W5,CANADA
来源
CANADIAN JOURNAL OF STATISTICS-REVUE CANADIENNE DE STATISTIQUE | 1994年 / 22卷 / 04期
关键词
MULTIVARIATE INTERPOLATION; POSTERIOR DISTRIBUTIONS; KRIGING; SPATIAL COVARIANCE ESTIMATION; KRONECKER PRODUCTS; OZONE; SULFATE; NITRATES; ENVIRONMENTAL MONITORING;
D O I
10.2307/3315406
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
We develop and apply an approach to the spatial interpolation of a vector-valued random response field. The Bayesian approach we adopt enables uncertainty about the underlying models to be represented in expressing the accuracy of the resulting interpolants. The methodology is particularly relevant in environmetrics, where vector-valued responses are only observed at designated sites at successive time points. The theory allows space-time modelling at the second level of the hierarchical prior model so that uncertainty about the model parameters has been fully expressed at the first level. In this way, we avoid unduly optimistic estimates of inferential accuracy. Moreover, the prior model can be upgraded with any available new data, while past data can be used in a systematic way to fit model parameters. The theory is based on the multivariate normal and related joint distributions. Our hierarchical prior models lead to posterior distributions which are robust with respect to the choice of the prior (hyperparameters). We illustrate our theory with an example involving monitoring stations in southern Ontario, where monthly average levels of ozone, sulphate, and nitrate are available and between-station response triplets are interpolated. In this example we use a recently developed method for interpolating spatial correlation fields.
引用
收藏
页码:489 / 509
页数:21
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