Measure, Integration and a Primer on Probability Theory

Measure, Integration and a Primer on Probability Theory
Title Measure, Integration and a Primer on Probability Theory PDF eBook
Author Stefano Gentili
Publisher Springer Nature
Total Pages 458
Release 2020-11-30
Genre Mathematics
ISBN 3030549402

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The text contains detailed and complete proofs and includes instructive historical introductions to key chapters. These serve to illustrate the hurdles faced by the scholars that developed the theory, and allow the novice to approach the subject from a wider angle, thus appreciating the human side of major figures in Mathematics. The style in which topics are addressed, albeit informal, always maintains a rigorous character. The attention placed in the careful layout of the logical steps of proofs, the abundant examples and the supplementary remarks disseminated throughout all contribute to render the reading pleasant and facilitate the learning process. The exposition is particularly suitable for students of Mathematics, Physics, Engineering and Statistics, besides providing the foundation essential for the study of Probability Theory and many branches of Applied Mathematics, including the Analysis of Financial Markets and other areas of Financial Engineering.

Measure, Integral and Probability

Measure, Integral and Probability
Title Measure, Integral and Probability PDF eBook
Author Marek Capinski
Publisher Springer Science & Business Media
Total Pages 229
Release 2013-06-29
Genre Mathematics
ISBN 1447136314

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This very well written and accessible book emphasizes the reasons for studying measure theory, which is the foundation of much of probability. By focusing on measure, many illustrative examples and applications, including a thorough discussion of standard probability distributions and densities, are opened. The book also includes many problems and their fully worked solutions.

Introdction to Measure and Probability

Introdction to Measure and Probability
Title Introdction to Measure and Probability PDF eBook
Author J. F. C. Kingman
Publisher Cambridge University Press
Total Pages
Release 2008-11-20
Genre Mathematics
ISBN 1316582159

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The authors believe that a proper treatment of probability theory requires an adequate background in the theory of finite measures in general spaces. The first part of their book sets out this material in a form that not only provides an introduction for intending specialists in measure theory but also meets the needs of students of probability. The theory of measure and integration is presented for general spaces, with Lebesgue measure and the Lebesgue integral considered as important examples whose special properties are obtained. The introduction to functional analysis which follows covers the material (such as the various notions of convergence) which is relevant to probability theory and also the basic theory of L2-spaces, important in modern physics. The second part of the book is an account of the fundamental theoretical ideas which underlie the applications of probability in statistics and elsewhere, developed from the results obtained in the first part. A large number of examples is included; these form an essential part of the development.

Measure Theory and Probability

Measure Theory and Probability
Title Measure Theory and Probability PDF eBook
Author Malcolm Adams
Publisher Springer Science & Business Media
Total Pages 217
Release 2013-04-17
Genre Mathematics
ISBN 1461207797

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"...the text is user friendly to the topics it considers and should be very accessible...Instructors and students of statistical measure theoretic courses will appreciate the numerous informative exercises; helpful hints or solution outlines are given with many of the problems. All in all, the text should make a useful reference for professionals and students."—The Journal of the American Statistical Association

Measure, Integration, and Probability

Measure, Integration, and Probability
Title Measure, Integration, and Probability PDF eBook
Author Claude W. Burrill
Publisher
Total Pages 486
Release 1972
Genre Mathematics
ISBN

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Metric spaces; Functions on metric spaces; Fields; Measure; Integration; Differentiation; Types of convergence; Hilbert space; Probability; Characteristic functions; Almost sure convergence; Central limit problem; Conditional probability, conditional expectation and martingales; Stochastic processes.

Measure, Integral, Probability & Processes

Measure, Integral, Probability & Processes
Title Measure, Integral, Probability & Processes PDF eBook
Author René L Schilling
Publisher
Total Pages 450
Release 2021-02-02
Genre
ISBN

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In these lecture notes we give a self-contained and concise introduction to the essentials of modern probability theory. The material covers all concepts and techniques usually taught at BSc and first-year graduate level probability courses: Measure & integration theory, elementary probability theory, further probability, classic limit theorems, discrete-time and continuous-time martingales, Poisson processes, random walks & Markov chains and, finally, first steps towards Brownian motion. The text can serve as a course companion, for self study or as a reference text. Concepts, which will be useful for later chapters and further studies are introduced early on. The material is organized and presented in a way that will enable the readers to continue their study with any advanced text in probability theory, stochastic processes or stochastic analysis. Much emphasis is put on being reader-friendly and useful, giving a direct and quick start into a fascinating mathematical topic.

Probability and Measure Theory

Probability and Measure Theory
Title Probability and Measure Theory PDF eBook
Author Robert B. Ash
Publisher Academic Press
Total Pages 536
Release 2000
Genre Mathematics
ISBN 9780120652020

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Probability and Measure Theory, Second Edition, is a text for a graduate-level course in probability that includes essential background topics in analysis. It provides extensive coverage of conditional probability and expectation, strong laws of large numbers, martingale theory, the central limit theorem, ergodic theory, and Brownian motion. Clear, readable style Solutions to many problems presented in text Solutions manual for instructors Material new to the second edition on ergodic theory, Brownian motion, and convergence theorems used in statistics No knowledge of general topology required, just basic analysis and metric spaces Efficient organization