Monte-carlo Methods And Stochastic Processes: From Linear To Non-linear

Emmanuel Gobet
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Monte-carlo Methods And Stochastic Processes: From Linear To Non-linear

Emmanuel Gobet
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"Emmanuel Gobet has successfully put together the modern tools for Monte Carlo simulations of continuous-time stochastic processes. He takes us from classical methods to new challenging nonlinear situations from various fields of applications, and rightly explains that naive approaches can be misleading. The book is self-contained, rigorous and definitely a must-have for anyone performing simulations and worrying about quantifying statistical errors."

- Jean-Pierre Fouque, Director of the Center for Financial Mathematics and Actuarial Research, University of California, Santa Barbara

"This book is a modern and broad presentation of Monte Carlo techniques related to the simulation of several types of continuous-time stochastic processes. The discussion is pedagogical (the book originates from a course on Monte Carlo methods); in particular, each chapter contains exercises. Nevertheless, detailed and rigorous proofs of difficult results are provided; generalizations, which often deal with current research questions, are mentioned. Both theoretical and practical aspects are considered.

The book is divided into three parts. The third one, which treats the simulation of some non-linear processes in connexion with non-linear PDEs, certainly provides a nice and original contribution, and concerns topics which have been investigated only very recently."

- Charles-Edouard Brehier, Mathematical Reviews, June 2017

  • Date de publication : Sep 30, 2020
  • Langue : anglais
  • Nombre de pages : 336
  • Éditeur : CRC Press
  • ISBN : 9780367658465
  • Dimensions : 6.13" W x 1.0" L x 9.19" H

Emmanuel Gobetis a professor of applied mathematics at Ecole Polytechnique. His research interests include algorithms of probabilistic type and stochastic approximations, financial mathematics, Malliavin calculus and stochastic analysis, Monte Carlo simulations, statistics for stochastic processes, and statistical learning.

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