Case studies in spatial point process modeling

Point process statistics is successfully used in fields such as material science, human epidemiology, social sciences, animal epidemiology, biology, and seismology. Its further application depends greatly on good software and instructive case studies that show the way to successful work. This book s...

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Detalles Bibliográficos
Outros autores: Baddeley, Adrian, 1955- (Directeur de la publication), Gregori, Pablo (Directeur de la publication), Mateu, Jorge (Directeur de la publication), Stoica, Radu (Directeur de la publication), Stoyan, Dietrich (Directeur de la publication)
Formato: Livre numérique
Idioma:Anglais
Publicado: New York, NY : Springer New York [20..].
Cham : Springer Nature
Edición:1st ed. 2006.
Series:Lecture Notes in Statistics 185
Sujets:
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Nota: Description d'après consultation du 14 mars 2011
Archives Springer e-books (Licence nationale)
Archives Springer e-books (Licence nationale)
Autres localisations: Voir dans le Sudoc
Edition sous un autre format:• Case studies in spatial point process modeling, Adrian Baddeley, Pablo Gregori, Jorge Mateu... [et al.], editors, 2006, New York, Springer, 1 vol. (XVII-306 p.), Lecture notes in statistics, 978-0-387-28311-1
• Case Studies in Spatial Point Process Modeling, Texte imprimé, 9780387509013
• Case studies in spatial point process modeling, Adrian Baddeley, Pablo Gregori, Jorge Mateu... [et al.], editors, 2006, New York, Springer, 1 vol. (XVII-306 p.), Lecture notes in statistics, 978-0-387-28311-1
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505 1 |a Basic Notions and Manipulation of Spatial Point Processes Fundamentals of Point Process Statistics Modelling Spatial Point Patterns in R Theoretical and Methodological Advances in Spatial Point Processes Strong Markov Property of Poisson Processes and Slivnyak Formula Bayesian Analysis of Markov Point Processes Statistics for Locally Scaled Point Processes Nonparametric Testing of Distribution Functions in Germ-grain Models Principal Component Analysis for Spatial Point Processes Assessing the Appropriateness of the Approach in an Ecological Context Practical Applications of Spatial Point Processes On Modelling of Refractory Castables by Marked Gibbs and Gibbsian-like Processes Source Detection in an Outbreak of Legionnaire s Disease Doctors Prescribing Patterns in the Midi-Pyrénées rRegion of France: Point-process Aggregation Strain-typing Transmissible Spongiform Encephalopathies Using Replicated Spatial Data Modelling the Bivariate Spatial Distribution of Amacrine Cells Analysis of Spatial Point Patterns in Microscopic and Macroscopic Biological Image Data Spatial Marked Point Patterns for Herd Dispersion in a Savanna Wildlife Herbivore Community in Kenya Diagnostic Analysis of Space-Time Branching Processes for Earthquakes Assessing Spatial Point Process Models Using Weighted K-functions: Analysis of California Earthquakes 
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520 |a Point process statistics is successfully used in fields such as material science, human epidemiology, social sciences, animal epidemiology, biology, and seismology. Its further application depends greatly on good software and instructive case studies that show the way to successful work. This book satisfies this need by a presentation of the spatstat package and many statistical examples. Researchers, spatial statisticians and scientists from biology, geosciences, materials sciences and other fields will use this book as a helpful guide to the application of point process statistics. No other book presents so many well-founded point process case studies. Adrian Baddeley is Professor of Statistics at the University of Western Australia (Perth, Australia) and a Fellow of the Australian Academy of Science. His main research interests are in stochastic geometry, stereology, spatial statistics, image analysis and statistical software. Pablo Gregori is senior lecturer of Statistics and Probability at the Department of Mathematics, University Jaume I of Castellon. His research fields of interest are spatial statistics, mainly on spatial point processes, and measure theory of functional analysis. Jorge Mateu is Assistant Professor of Statistics and Probability at the Department of Mathematics, University Jaume I of Castellon and a Fellow of the Spanish Statistical Society and of Wessex Institute of Great Britain. His main research interests are in stochastic geometry and spatial statistics, mainly spatial point processes and geostatistics. Radu Stoica obtained his Ph.D. in 2001 from the University of Nice Sophia Anitpolis. He works within the biometry group at INRA Avignon. His research interests are related to the study and the simulation of point processes applied to pattern modeling and recognition. The aimed application domains are image processing, astronomy and environmental sciences. Dietrich Stoyan is Professor of Applied Stochastics at TU Bergakademie Freiberg, Germany. Since the end of the 1970s he has worked in the fields of stochastic geometry and spatial statistics 
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