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Stochastic processes : theory for applications / Robert G. Gallager, MIT.

By: Material type: TextTextPublisher: Cambridge, United Kingdom ; New York : Cambridge University Press, 2013Description: xx, 536 pages : illustrations ; 26 cmContent type:
  • text
Media type:
  • unmediated
Carrier type:
  • volume
ISBN:
  • 9781107039759 (hardback)
  • 1107039754 (hardback)
Subject(s): LOC classification:
  • QA 274 .G3 2013
Contents:
Machine generated contents note: 1. Introduction and review of probability; 2. Poisson processes; 3. Gaussian random vectors and processes; 4. Finite-state Markov chains; 5. Renewal processes; 6. Countable-state Markov chains; 7. Markov processes with countable state spaces; 8. Detection, decisions, and hypothesis testing; 9. Random walks, large deviations, and martingales; 10. Estimation.
Summary: "This definitive textbook provides a solid introduction to discrete and continuous stochastic processes, tackling a complex field in a way that instils a deep understanding of the relevant mathematical principles, and develops an intuitive grasp of the way these principles can be applied to modelling real-world systems. It includes a careful review of elementary probability and detailed coverage of Poisson, Gaussian and Markov processes with richly varied queuing applications. The theory and applications of inference, hypothesis testing, estimation, random walks, large deviations, martingales and investments are developed. Written by one of the world's leading information theorists, evolving over 20 years of graduate classroom teaching and enriched by over 300 exercises, this is an exceptional resource for anyone looking to develop their understanding of stochastic processes"-- Provided by publisher.Summary: "Basic underlying principles and axioms are made clear from the start, and new topics are developed as needed, encouraging and enabling students to develop an instinctive grasp of the fundamentals. Mathematical proofs are made easy for students to understand and remember, helping them quickly learn how to choose and apply the best possible models to real-world situations"-- Provided by publisher.
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Holdings
Item type Current library Call number Status Notes Date due Barcode
General circulation General circulation SEHSS - Library General Stacks [EHS] QA 274 .G3 (Browse shelf(Opens below)) Checked out A.K. 15/10/2022 2016/010181
General circulation General circulation SEHSS - Library General Stacks [EHS] QA 274 .G3 (Browse shelf(Opens below)) Checked out A.K. 15/10/2022 2016/010181
Browsing SEHSS - Library shelves, Shelving location: General Stacks Close shelf browser (Hides shelf browser)
[EHS] QA 303.2 .B4 2005 Finite mathematics and applied calculus [EHS] H 61 .M48 2012 Measure and value / [EHS] QR 41.2 .B58 2004 Microbiology : [EHS] QA 274 .G3 Stochastic processes : [EHS] HA 29 .C3 2014 Monte Carlo simulation and resampling methods for social science / [EHS] QA 39.3 .M3 2006 Basic college mathematics / [EHS] QA 152.3 .S8 Elementary & intermediate algebra /

Includes bibliographical references (pages 528-529) and index.

Machine generated contents note: 1. Introduction and review of probability; 2. Poisson processes; 3. Gaussian random vectors and processes; 4. Finite-state Markov chains; 5. Renewal processes; 6. Countable-state Markov chains; 7. Markov processes with countable state spaces; 8. Detection, decisions, and hypothesis testing; 9. Random walks, large deviations, and martingales; 10. Estimation.

"This definitive textbook provides a solid introduction to discrete and continuous stochastic processes, tackling a complex field in a way that instils a deep understanding of the relevant mathematical principles, and develops an intuitive grasp of the way these principles can be applied to modelling real-world systems. It includes a careful review of elementary probability and detailed coverage of Poisson, Gaussian and Markov processes with richly varied queuing applications. The theory and applications of inference, hypothesis testing, estimation, random walks, large deviations, martingales and investments are developed. Written by one of the world's leading information theorists, evolving over 20 years of graduate classroom teaching and enriched by over 300 exercises, this is an exceptional resource for anyone looking to develop their understanding of stochastic processes"-- Provided by publisher.

"Basic underlying principles and axioms are made clear from the start, and new topics are developed as needed, encouraging and enabling students to develop an instinctive grasp of the fundamentals. Mathematical proofs are made easy for students to understand and remember, helping them quickly learn how to choose and apply the best possible models to real-world situations"-- Provided by publisher.

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