Space-Time Point Processes

Space-Time Point Processes

EnglishHardbackPrint on demand
Schoenberg, Frederic
Springer, Berlin
EAN: 9783032207890
Print on demand
Delivery on Friday, 21. of August 2026
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Detailed information

The book focuses on applied methodology, and summarizes the main issues in the practical applications associated with space-time point processes. In particular, the questions addressed in this book are:

  • How can one summarize space-time point process data?
  • How are space-time point processes modeled?
  • What are the different ways of estimating parameters in space-time point process models, and how do they compare?
  • How can space-time point process models be estimated non-parametrically?
  • What techniques exist for assessing how well a space-time point process model fits to data, or for comparing the fit of multiple models?
  • How can one use a space-time point process model to forecast the probability of future events? 

Applied examples are used throughout the book, and the text includes R code for implementing all the techniques discussed in the book. The book covers standard, classical methods for point processes, such as Poisson processes, Cox processes, Neyman-Scott processes, Hawkes models, conditional intensities, kernel smoothing, and Ripley's K-function, and also describes important recent advances for space-time point processes, such as Model-Independent Stochastic Declustering (MISD), Stoyan-Grabarnik parameter estimation, Voronoi deviance residuals, and super-thinned residuals.

The book is meant to be used for teaching at the graduate or undergraduate levels. Sample exercises are given at the end of each chapter, and these problems are not too difficult and thus suitable for undergraduate or graduate students in applied statistics. The goal is to educate and train students in the practical aspects of the summary, description and forecasting of spatial-temporal point process data.

 

 

EAN 9783032207890
ISBN 3032207894
Binding Hardback
Publisher Springer, Berlin
Publication date June 16, 2026
Pages 133
Language English
Dimensions 254 x 178
Country Switzerland
Authors SCHOENBERG, FREDERIC
Illustrations 24 Illustrations, color; 30 Illustrations, black and white
Series Springer Texts in Statistics
Manufacturer information
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