6533b827fe1ef96bd1286f84
RESEARCH PRODUCT
Nonparametric clustering of seismic events
Luciana De LucaDario LuzioGiada AdelfioMarcello Chiodisubject
Goodness of fitGeneralizationComputer scienceNonparametric statisticsContext (language use)Maximization.Cluster analysisLikelihood functionAlgorithmPoint processdescription
In this paper we propose a clustering technique, based on the maximization of the likelihood function defined from the generalization of a model for seismic activity (ETAS model, (Ogata (1988))), iteratively changing the partitioning of the events. In this context it is useful to apply models requiring the distinction between independent events (i.e. the background seismicity) and strongly correlated ones. This technique develops nonparametric estimation methods of the point process intensity function. To evaluate the goodness of fit of the model, from which the clustering method is implemented, residuals process analysis is used.
year | journal | country | edition | language |
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2006-01-01 |