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Non-Gaussian selfsimilar stochastic ...
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Tudor, Ciprian.
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Non-Gaussian selfsimilar stochastic processes
Record Type:
Electronic resources : Monograph/item
Title/Author:
Non-Gaussian selfsimilar stochastic processes/ by Ciprian Tudor.
Author:
Tudor, Ciprian.
Published:
Cham :Springer Nature Switzerland : : 2023.,
Description:
xii, 101 p. :ill., digital ;24 cm.
[NT 15003449]:
Introduction -- Chapter 1. Multiple Stochastic Integrals -- Chapter 2. Hermite processes: Definition and basic properties -- Chapter 3. The Wiener integral with respect to the Hermite process and the Hermite Ornstein-Uhlenbeck process -- Chapter 4. Hermite sheets and SPDEs -- Chapter 5. Statistical inference for stochastic (partial) differential equations with Hermite noise -- References.
Contained By:
Springer Nature eBook
Subject:
Self-similar processes. -
Online resource:
https://doi.org/10.1007/978-3-031-33772-7
ISBN:
9783031337727
Non-Gaussian selfsimilar stochastic processes
Tudor, Ciprian.
Non-Gaussian selfsimilar stochastic processes
[electronic resource] /by Ciprian Tudor. - Cham :Springer Nature Switzerland :2023. - xii, 101 p. :ill., digital ;24 cm. - SpringerBriefs in probability and mathematical statistics,2365-4341. - SpringerBriefs in probability and mathematical statistics..
Introduction -- Chapter 1. Multiple Stochastic Integrals -- Chapter 2. Hermite processes: Definition and basic properties -- Chapter 3. The Wiener integral with respect to the Hermite process and the Hermite Ornstein-Uhlenbeck process -- Chapter 4. Hermite sheets and SPDEs -- Chapter 5. Statistical inference for stochastic (partial) differential equations with Hermite noise -- References.
This book offers an introduction to the field of stochastic analysis of Hermite processes. These selfsimilar stochastic processes with stationary increments live in a Wiener chaos and include the fractional Brownian motion, the only Gaussian process in this class. Using the Wiener chaos theory and multiple stochastic integrals, the book covers the main properties of Hermite processes and their multiparameter counterparts, the Hermite sheets. It delves into the probability distribution of these stochastic processes and their sample paths, while also presenting the basics of stochastic integration theory with respect to Hermite processes and sheets. The book goes beyond theory and provides a thorough analysis of physical models driven by Hermite noise, including the Hermite Ornstein-Uhlenbeck process and the solution to the stochastic heat equation driven by such a random perturbation. Moreover, it explores up-to-date topics central to current research in statistical inference for Hermite-driven models.
ISBN: 9783031337727
Standard No.: 10.1007/978-3-031-33772-7doiSubjects--Topical Terms:
747380
Self-similar processes.
LC Class. No.: QA274.9
Dewey Class. No.: 519.23
Non-Gaussian selfsimilar stochastic processes
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Introduction -- Chapter 1. Multiple Stochastic Integrals -- Chapter 2. Hermite processes: Definition and basic properties -- Chapter 3. The Wiener integral with respect to the Hermite process and the Hermite Ornstein-Uhlenbeck process -- Chapter 4. Hermite sheets and SPDEs -- Chapter 5. Statistical inference for stochastic (partial) differential equations with Hermite noise -- References.
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This book offers an introduction to the field of stochastic analysis of Hermite processes. These selfsimilar stochastic processes with stationary increments live in a Wiener chaos and include the fractional Brownian motion, the only Gaussian process in this class. Using the Wiener chaos theory and multiple stochastic integrals, the book covers the main properties of Hermite processes and their multiparameter counterparts, the Hermite sheets. It delves into the probability distribution of these stochastic processes and their sample paths, while also presenting the basics of stochastic integration theory with respect to Hermite processes and sheets. The book goes beyond theory and provides a thorough analysis of physical models driven by Hermite noise, including the Hermite Ornstein-Uhlenbeck process and the solution to the stochastic heat equation driven by such a random perturbation. Moreover, it explores up-to-date topics central to current research in statistical inference for Hermite-driven models.
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Mathematics and Statistics (SpringerNature-11649)
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