A latent process regression model for spatially correlated count data

被引:25
|
作者
McShane, LM
Albert, PS
Palmatier, MA
机构
[1] NCI,DIV CANC PREVENT & CONTROL,BIOMETRY BRANCH,BETHESDA,MD 20892
[2] NHLBI,DIV EPIDEMIOL & CLIN APPLICAT,OFF BIOSTAT RES,BETHESDA,MD 20892
[3] YALE UNIV,SCH MED,DEPT GENET,NEW HAVEN,CT 06520
关键词
count data; generalised estimating equations; latent process regression; spatial correlation;
D O I
10.2307/2533969
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
This paper proposes a regression model for spatially correlated count data that generalizes the work of Zeger (1988, Biometrika 75, 621-629) developed in a time-series setting. In this approach, spatial correlation is introduced through a latent process, and the marginal mean function may contain spatial trends and covariates. Generalized estimating equations are used to estimate and perform marginal inference on the spatial trend and covariate effects. The feasibility of this approach is demonstrated using an example of the distribution of neuronal cell counts in a laboratory culture dish.
引用
收藏
页码:698 / 706
页数:9
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