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Probability: Theory and Examples: Cambridge Series in Statistical and Probabilistic Mathematics, cartea 49

Autor Rick Durrett
en Limba Engleză Hardback – 17 apr 2019
This lively introduction to measure-theoretic probability theory covers laws of large numbers, central limit theorems, random walks, martingales, Markov chains, ergodic theorems, and Brownian motion. Concentrating on results that are the most useful for applications, this comprehensive treatment is a rigorous graduate text and reference. Operating under the philosophy that the best way to learn probability is to see it in action, the book contains extended examples that apply the theory to concrete applications. This fifth edition contains a new chapter on multidimensional Brownian motion and its relationship to partial differential equations (PDEs), an advanced topic that is finding new applications. Setting the foundation for this expansion, Chapter 7 now features a proof of Itô's formula. Key exercises that previously were simply proofs left to the reader have been directly inserted into the text as lemmas. The new edition re-instates discussion about the central limit theorem for martingales and stationary sequences.
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Specificații

ISBN-13: 9781108473682
ISBN-10: 1108473687
Pagini: 430
Ilustrații: 20 b/w illus.
Dimensiuni: 181 x 260 x 28 mm
Greutate: 0.91 kg
Ediția:5Școlară
Editura: Cambridge University Press
Colecția Cambridge University Press
Seria Cambridge Series in Statistical and Probabilistic Mathematics

Locul publicării:New York, United States

Cuprins

1. Measure theory; 2. Laws of large numbers; 3. Central limit theorems; 4. Martingales; 5. Markov chains; 6. Ergodic theorems; 7. Brownian motion; 8. Applications to random walk; 9. Multidimensional Brownian motion; Appendix. Measure theory details.

Recenzii

'Probability: Theory and Examples 5th Edition still holds true to its original goal that as the theory is developed, the focus of attention will be on examples with hundreds of examples provided and hundreds of example problems given as exercises for the reader.' Brent Kelderman, MAA Reviews

Notă biografică


Descriere

A well-written and lively introduction to measure theoretic probability for graduate students and researchers.