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Log Gaussian Cox Processes
Authors:Jesper Mø  ller,Anne Randi Syversveen,&   Rasmus Plenge Waagepetersen
Affiliation:Aalborg University,;The Norwegian University of Science and Technology,;University of Aarhus
Abstract:Planar Cox processes directed by a log Gaussian intensity process are investigated in the univariate and multivariate cases. The appealing properties of such models are demonstrated theoretically as well as through data examples and simulations. In particular, the first, second and third-order properties are studied and utilized in the statistical analysis of clustered point patterns. Also empirical Bayesian inference for the underlying intensity surface is considered.
Keywords:empirical Bayesian inference    ergodicity    Markov chain Monte Carlo    Metropolis-adjusted Langevin algorithm    multivariate Cox processes    Neyman–Scott processes    pair correlation function    parameter estimation    spatial point processes    third-order properties
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