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Leverage and Influence Diagnostics for Spatial Point Processes
Authors:ADRIAN BADDELEY  YA‐MEI CHANG  YONG SONG
Institution:1. CSIRO Mathematics, Informatics and Statistics, and School of Mathematics & Statistics, University of Western Australia;2. CSIRO Mathematics, Informatics and Statistics, and Department of Statistics, Tamkang University;3. CSIRO Mathematics, Informatics and Statistics
Abstract:Abstract. For a spatial point process model fitted to spatial point pattern data, we develop diagnostics for model validation, analogous to the classical measures of leverage and influence in a generalized linear model. The diagnostics can be characterized as derivatives of basic functionals of the model. They can also be derived heuristically (and computed in practice) as the limits of classical diagnostics under increasingly fine discretizations of the spatial domain. We apply the diagnostics to two example datasets where there are concerns about model validity.
Keywords:deletion derivative    teaux derivative  Gibbs point process  point process residuals  Poisson point process  pseudolikelihood  raised incidence model  residuals  spatial clustering  spatial covariates
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