Handbook of Markov Decision Processes

Handbook of Markov Decision Processes
Author: Eugene A. Feinberg
Publisher: Springer Science & Business Media
Total Pages: 560
Release: 2012-12-06
Genre: Business & Economics
ISBN: 1461508053


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Eugene A. Feinberg Adam Shwartz This volume deals with the theory of Markov Decision Processes (MDPs) and their applications. Each chapter was written by a leading expert in the re spective area. The papers cover major research areas and methodologies, and discuss open questions and future research directions. The papers can be read independently, with the basic notation and concepts ofSection 1.2. Most chap ters should be accessible by graduate or advanced undergraduate students in fields of operations research, electrical engineering, and computer science. 1.1 AN OVERVIEW OF MARKOV DECISION PROCESSES The theory of Markov Decision Processes-also known under several other names including sequential stochastic optimization, discrete-time stochastic control, and stochastic dynamic programming-studiessequential optimization ofdiscrete time stochastic systems. The basic object is a discrete-time stochas tic system whose transition mechanism can be controlled over time. Each control policy defines the stochastic process and values of objective functions associated with this process. The goal is to select a "good" control policy. In real life, decisions that humans and computers make on all levels usually have two types ofimpacts: (i) they cost orsavetime, money, or other resources, or they bring revenues, as well as (ii) they have an impact on the future, by influencing the dynamics. In many situations, decisions with the largest immediate profit may not be good in view offuture events. MDPs model this paradigm and provide results on the structure and existence of good policies and on methods for their calculation.


Handbook of Markov Decision Processes
Language: en
Pages: 560
Authors: Eugene A. Feinberg
Categories: Business & Economics
Type: BOOK - Published: 2012-12-06 - Publisher: Springer Science & Business Media

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Eugene A. Feinberg Adam Shwartz This volume deals with the theory of Markov Decision Processes (MDPs) and their applications. Each chapter was written by a lead
Handbook of Markov Decision Processes
Language: en
Pages: 0
Authors: Eugene A. Feinberg
Categories: Business & Economics
Type: BOOK - Published: 2012-10-29 - Publisher: Springer

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Eugene A. Feinberg Adam Shwartz This volume deals with the theory of Markov Decision Processes (MDPs) and their applications. Each chapter was written by a lead
Handbook of Markov Decision Processes
Language: en
Pages: 578
Authors: Eugene A. Feinberg
Categories: Business & Economics
Type: BOOK - Published: 2002 - Publisher: Taylor & Francis US

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The theory of Markov Decision Processes - also known under several other names including sequential stochastic optimization, discrete-time stochastic control, a
Markov Decision Processes with Applications to Finance
Language: en
Pages: 393
Authors: Nicole Bäuerle
Categories: Mathematics
Type: BOOK - Published: 2011-06-06 - Publisher: Springer Science & Business Media

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The theory of Markov decision processes focuses on controlled Markov chains in discrete time. The authors establish the theory for general state and action spac
Markov Chains and Decision Processes for Engineers and Managers
Language: en
Pages: 478
Authors: Theodore J. Sheskin
Categories: Mathematics
Type: BOOK - Published: 2016-04-19 - Publisher: CRC Press

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Recognized as a powerful tool for dealing with uncertainty, Markov modeling can enhance your ability to analyze complex production and service systems. However,