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Measure Theory and Probability Theory

von Lahiri, Soumendra N. / Athreya, Krishna B.   (Autor)

This is a graduate level textbook on measure theory and probability theory. It presents the main concepts and results in measure theory and probability theory. It further provides heuristic explanations behind the theory to help students see the big picture.

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Produktbeschreibung

This book arose out of two graduate courses that the authors have taught duringthepastseveralyears;the?rstonebeingonmeasuretheoryfollowed by the second one on advanced probability theory. The traditional approach to a ?rst course in measure theory, such as in Royden (1988), is to teach the Lebesgue measure on the real line, then the p di?erentation theorems of Lebesgue, L -spaces on R, and do general m- sure at the end of the course with one main application to the construction of product measures. This approach does have the pedagogic advantage of seeing one concrete case ?rst before going to the general one. But this also has the disadvantage in making many students¿ perspective on m- sure theory somewhat narrow. It leads them to think only in terms of the Lebesgue measure on the real line and to believe that measure theory is intimately tied to the topology of the real line. As students of statistics, probability, physics, engineering, economics, and biology know very well, there are mass distributions that are typically nonuniform, and hence it is useful to gain a general perspective. This book attempts to provide that general perspective right from the beginning. The opening chapter gives an informal introduction to measure and integration theory. It shows that the notions of ?-algebra of sets and countable additivity of a set function are dictated by certain very na- ral approximation procedures from practical applications and that they are not just some abstract ideas. 

Inhaltsverzeichnis

Measures and Integration: An Informal Introduction.- Measures.- Integration.- Lp-Spaces.- Differentiation.- Product Measures, Convolutions, and Transforms.- Probability Spaces.- Independence.- Laws of Large Numbers.- Convergence in Distribution.- Characteristic Functions.- Central Limit Theorems.- Conditional Expectation and Conditional Probability.- Discrete Parameter Martingales.- Markov Chains and MCMC.- Stochastic Processes.- Limit Theorems for Dependent Processes.- The Bootstrap.- Branching Processes. 

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Produktdetails

Medium: Buch
Format: Gebunden
Seiten: 640
Sprache: Englisch
Erschienen: Juli 2006
Auflage: 2006
Maße: 241 x 160 mm
Gewicht: 1115 g
ISBN-10: 038732903X
ISBN-13: 9780387329031
Verlagsbestell-Nr.: 10991107

Bestell-Nr.: 2802663 
Libri-Verkaufsrang (LVR):
Libri-Relevanz: 0 (max 9.999)
Bestell-Nr. Verlag: 10991107

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KNO-SAMMLUNG: Springer Texts in Statistics
KNOABBVERMERK: 2006. xviii, 619 S. XVIII, 619 p. 235 mm
Einband: Gebunden
Auflage: 2006
Sprache: Englisch
Beilage(n): HC runder Rücken kaschiert

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