Networks: Probability and Statistics

Networks: Probability and Statistics (Cambridge Series in Statistical and Probabilistic Mathematics, Series Number 57) book cover

Networks: Probability and Statistics (Cambridge Series in Statistical and Probabilistic Mathematics, Series Number 57)

Author(s): A. D. Barbour (Author), Gesine Reinert (Author)

  • Publisher Finelybook 出版社: Cambridge University Press
  • Publication Date 出版日期: June 25, 2026
  • Language 语言: English
  • Print length 页数: 964 pages
  • ISBN-10: 1009651722
  • ISBN-13: 9781009651721

Book Description

From social networks to biological systems, networks are a fundamental part of modern life. Network analysis is increasingly popular across the mathematical, physical, life and social sciences, offering insights into a range of phenomena, from developing new drugs based on intracellular interactions, to understanding the influence of social interactions on behaviour patterns. This book provides a toolkit for analyzing random networks, together with theoretical justification of the methods proposed. It combines methods from both probability and statistics, teaching how to build and analyze plausible models for random networks, and how to validate such models, to detect unusual features in the data, and to make predictions. Theoretical results are motivated by applications across a range of fields, and classical data sets are used for illustration throughout the book. This book offers a comprehensive introduction to the field for graduate students and researchers.

Editorial Reviews

About the Author

A. D. Barbour is Emeritus Professor of Mathematics at the University of Zürich. He is also Honorary Professorial Fellow in Mathematics at the University of Melbourne and Fellow of the Institute of Mathematical Statistics. He previously co-authored the monographs ‘Poisson Approximation’ (1992) and ‘Logarithmic Combinatorial Structures: A Probabilistic Approach’ (2003).

Gesine Reinert is Professor of Statistics and Fellow of Keble College at the University of Oxford. She is also Fellow of the Institute of Mathematical Statistics. Her research spans applied probability, network science, computational biology, and theoretical foundations of machine learning.

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