9781107039469-1107039460-Long-Range Dependence and Self-Similarity (Cambridge Series in Statistical and Probabilistic Mathematics, Series Number 45)

Long-Range Dependence and Self-Similarity (Cambridge Series in Statistical and Probabilistic Mathematics, Series Number 45)

ISBN-13: 9781107039469
ISBN-10: 1107039460
Edition: 1
Author: Vladas Pipiras, Murad S. Taqqu
Publication date: 2017
Publisher: Cambridge University Press
Format: Hardcover 688 pages
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Book details

ISBN-13: 9781107039469
ISBN-10: 1107039460
Edition: 1
Author: Vladas Pipiras, Murad S. Taqqu
Publication date: 2017
Publisher: Cambridge University Press
Format: Hardcover 688 pages

Summary

Long-Range Dependence and Self-Similarity (Cambridge Series in Statistical and Probabilistic Mathematics, Series Number 45) (ISBN-13: 9781107039469 and ISBN-10: 1107039460), written by authors Vladas Pipiras, Murad S. Taqqu, was published by Cambridge University Press in 2017. With an overall rating of 4.2 stars, it's a notable title among other Applied (Mathematics) books. You can easily purchase or rent Long-Range Dependence and Self-Similarity (Cambridge Series in Statistical and Probabilistic Mathematics, Series Number 45) (Hardcover, Used) from BooksRun, along with many other new and used Applied books and textbooks. And, if you're looking to sell your copy, our current buyback offer is $7.15.

Description

This modern and comprehensive guide to long-range dependence and self-similarity starts with rigorous coverage of the basics, then moves on to cover more specialized, up-to-date topics central to current research. These topics concern, but are not limited to, physical models that give rise to long-range dependence and self-similarity; central and non-central limit theorems for long-range dependent series, and the limiting Hermite processes; fractional Brownian motion and its stochastic calculus; several celebrated decompositions of fractional Brownian motion; multidimensional models for long-range dependence and self-similarity; and maximum likelihood estimation methods for long-range dependent time series. Designed for graduate students and researchers, each chapter of the book is supplemented by numerous exercises, some designed to test the reader's understanding, while others invite the reader to consider some of the open research problems in the field today.

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