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Introduction to Stochastic Programming (Springer Series in Operations Research and Financial Engineering) - edition reliée, livre de poche
ISBN: 1461402360
[SR: 1217356], Hardcover, [EAN: 9781461402367], Springer, Springer, Book, [PU: Springer], Springer, The aim of stochastic programming is to find optimal decisions in problems which involve uncertain data. This field is currently developing rapidly with contributions from many disciplines including operations research, mathematics, and probability. At the same time, it is now being applied in a wide variety of subjects ranging from agriculture to financial planning and from industrial engineering to computer networks. This textbook provides a first course in stochastic programming suitable for students with a basic knowledge of linear programming, elementary analysis, and probability. The authors aim to present a broad overview of the main themes and methods of the subject. Its prime goal is to help students develop an intuition on how to model uncertainty into mathematical problems, what uncertainty changes bring to the decision process, and what techniques help to manage uncertainty in solving the problems.In this extensively updated new edition there is more material on methods and examples including several new approaches for discrete variables, new results on risk measures in modeling and Monte Carlo sampling methods, a new chapter on relationships to other methods including approximate dynamic programming, robust optimization and online methods.The book is highly illustrated with chapter summaries and many examples and exercises. Students, researchers and practitioners in operations research and the optimization area will find it particularly of interest. Review of First Edition:"The discussion on modeling issues, the large number of examples used to illustrate the material, and the breadth of the coverage make 'Introduction to Stochastic Programming' an ideal textbook for the area." (Interfaces, 1998), 2687, Operations Research, 355561011, Processes & Infrastructure, 3, Business & Money, 1000, Subjects, 283155, Books, 3944, Introductory & Beginning, 3839, Programming, 5, Computers & Technology, 1000, Subjects, 283155, Books, 271582011, Mathematical & Statistical, 4053, Software, 5, Computers & Technology, 1000, Subjects, 283155, Books, 13946, Linear Programming, 226699, Applied, 13884, Mathematics, 75, Science & Math, 1000, Subjects, 283155, Books, 16244311, Stochastic Modeling, 226699, Applied, 13884, Mathematics, 75, Science & Math, 1000, Subjects, 283155, Books, 13955, Mathematical Analysis, 13884, Mathematics, 75, Science & Math, 1000, Subjects, 283155, Books, 468220, Business & Finance, 491564, Accounting, 684243011, Banking, 491578, Business Communication, 684244011, Business Development, 491580, Business Ethics, 491506, Business Law, 491584, Economics, 684245011, Entrepreneurship, 491594, Finance, 491602, Human Resources, 684246011, International Business, 684247011, Investments & Securities, 684248011, Management, 491624, Marketing, 684249011, Real Estate, 684250011, Sales, 465600, New, Used & Rental Textbooks, 2349030011, Specialty Boutique, 283155, Books, 468204, Computer Science, 491298, Algorithms, 491300, Artificial Intelligence, 491306, Database Storage & Design, 491308, Graphics & Visualization, 491302, Networking, 491310, Object-Oriented Software Design, 491312, Operating Systems, 491314, Programming Languages, 491316, Software Design & Engineering, 465600, New, Used & Rental Textbooks, 2349030011, Specialty Boutique, 283155, Books, 491548, Statistics, 468218, Mathematics, 468216, Science & Mathematics, 465600, New, Used & Rental Textbooks, 2349030011, Specialty Boutique, 283155, Books
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John R. Birge, François Louveaux:
Introduction to Stochastic Programming (Springer Series in Operations Research and Financial Engineering) - edition reliée, livre de pocheISBN: 1461402360
[SR: 1217356], Hardcover, [EAN: 9781461402367], Springer, Springer, Book, [PU: Springer], Springer, The aim of stochastic programming is to find optimal decisions in problems which involve uncertain data. This field is currently developing rapidly with contributions from many disciplines including operations research, mathematics, and probability. At the same time, it is now being applied in a wide variety of subjects ranging from agriculture to financial planning and from industrial engineering to computer networks. This textbook provides a first course in stochastic programming suitable for students with a basic knowledge of linear programming, elementary analysis, and probability. The authors aim to present a broad overview of the main themes and methods of the subject. Its prime goal is to help students develop an intuition on how to model uncertainty into mathematical problems, what uncertainty changes bring to the decision process, and what techniques help to manage uncertainty in solving the problems.In this extensively updated new edition there is more material on methods and examples including several new approaches for discrete variables, new results on risk measures in modeling and Monte Carlo sampling methods, a new chapter on relationships to other methods including approximate dynamic programming, robust optimization and online methods.The book is highly illustrated with chapter summaries and many examples and exercises. Students, researchers and practitioners in operations research and the optimization area will find it particularly of interest. Review of First Edition:"The discussion on modeling issues, the large number of examples used to illustrate the material, and the breadth of the coverage make 'Introduction to Stochastic Programming' an ideal textbook for the area." (Interfaces, 1998), 2687, Operations Research, 355561011, Processes & Infrastructure, 3, Business & Money, 1000, Subjects, 283155, Books, 3944, Introductory & Beginning, 3839, Programming, 5, Computers & Technology, 1000, Subjects, 283155, Books, 271582011, Mathematical & Statistical, 4053, Software, 5, Computers & Technology, 1000, Subjects, 283155, Books, 13946, Linear Programming, 226699, Applied, 13884, Mathematics, 75, Science & Math, 1000, Subjects, 283155, Books, 16244311, Stochastic Modeling, 226699, Applied, 13884, Mathematics, 75, Science & Math, 1000, Subjects, 283155, Books, 13955, Mathematical Analysis, 13884, Mathematics, 75, Science & Math, 1000, Subjects, 283155, Books, 468220, Business & Finance, 491564, Accounting, 684243011, Banking, 491578, Business Communication, 684244011, Business Development, 491580, Business Ethics, 491506, Business Law, 491584, Economics, 684245011, Entrepreneurship, 491594, Finance, 491602, Human Resources, 684246011, International Business, 684247011, Investments & Securities, 684248011, Management, 491624, Marketing, 684249011, Real Estate, 684250011, Sales, 465600, New, Used & Rental Textbooks, 2349030011, Specialty Boutique, 283155, Books, 468204, Computer Science, 491298, Algorithms, 491300, Artificial Intelligence, 491306, Database Storage & Design, 491308, Graphics & Visualization, 491302, Networking, 491310, Object-Oriented Software Design, 491312, Operating Systems, 491314, Programming Languages, 491316, Software Design & Engineering, 465600, New, Used & Rental Textbooks, 2349030011, Specialty Boutique, 283155, Books, 491548, Statistics, 468218, Mathematics, 468216, Science & Mathematics, 465600, New, Used & Rental Textbooks, 2349030011, Specialty Boutique, 283155, Books
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Bryant Electronics LLC
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2011
ISBN: 9781461402367
ID: 149170579
The aim of stochastic programming is to find optimal decisions in problems which involve uncertain data. This field is currently developing rapidly with contributions from many disciplines including operations research, mathematics, and probability. At the same time, it is now being applied in a wide variety of subjects ranging from agriculture to financial planning and from industrial engineering to computer networks. This textbook provides a first course in stochastic programming suitable for students with a basic knowledge of linear programming, elementary analysis, and probability. The authors aim to present a broad overview of the main themes and methods of the subject. Its prime goal is to help students develop an intuition on how to model uncertainty into mathematical problems, what uncertainty changes bring to the decision process, and what techniques help to manage uncertainty in solving the problems. In this extensively updated new edition there is more material on methods and examples including several new approaches for discrete variables, new results on risk measures in modeling and Monte Carlo sampling methods, a new chapter on relationships to other methods including approximate dynamic programming, robust optimization and online methods. The book is highly illustrated with chapter summaries and many examples and exercises. Students, researchers and practitioners in operations research and the optimization area will find it particularly of interest. Review of First Edition: ´´The discussion on modeling issues, the large number of examples used to illustrate the material, and the breadth of the coverage make ´Introduction to Stochastic Programming´ an ideal textbook for the area.´´ (Interfaces, 1998) In an extensively updated new edition, this book teaches stochastic programming, with new approaches for discrete variables, new results on risk measures in modeling and Monte Carlo sampling methods, a new chapter on relationships to other methods and more. Bücher > Fremdsprachige Bücher > Englische Bücher gebundene Ausgabe 27.06.2011 Buch (fremdspr.), Springer, .201
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ISBN: 9781461402367
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The aim of stochastic programming is to find optimal decisions in problems which involve uncertain data. This field is currently developing rapidly with contributions from many disciplines including operations research, mathematics, and probability. At the same time, it is now being applied in a wide variety of subjects ranging from agriculture to financial planning and from industrial engineering to computer networks. This textbook provides a first course in stochastic programming suitable for students with a basic knowledge of linear programming, elementary analysis, and probability. The authors aim to present a broad overview of the main themes and methods of the subject. Its prime goal is to help students develop an intuition on how to model uncertainty into mathematical problems, what uncertainty changes bring to the decision process, and what techniques help to manage uncertainty in solving the problems. In this extensively updated new edition there is more material on methods and examples including several new approaches for discrete variables, new results on risk measures in modeling and Monte Carlo sampling methods, a new chapter on relationships to other methods including approximate dynamic programming, robust optimization and online methods. The book is highly illustrated with chapter summaries and many examples and exercises. Students, researchers and practitioners in operations research and the optimization area will find it particularly of interest. Review of First Edition: ´´The discussion on modeling issues, the large number of examples used to illustrate the material, and the breadth of the coverage make ´Introduction to Stochastic Programming´ an ideal textbook for the area.´´ (Interfaces, 1998) In an extensively updated new edition, this book teaches stochastic programming, with new approaches for discrete variables, new results on risk measures in modeling and Monte Carlo sampling methods, a new chapter on relationships to other methods and more. Buch (fremdspr.) Bücher>Fremdsprachige Bücher>Englische Bücher, Springer
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ISBN: 9781461402367
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The aim of stochastic programming is to find optimal decisions in problems which involve uncertain data. This field is currently developing rapidly with contributions from many disciplines including operations research, mathematics, and probability. At the same time, it is now being applied in a wide variety of subjects ranging from agriculture to financial planning and from industrial engineering to computer networks. This textbook provides a first course in stochastic programming suitable for students with a basic knowledge of linear programming, elementary analysis, and probability. The authors aim to present a broad overview of the main themes and methods of the subject. Its prime goal is to help students develop an intuition on how to model uncertainty into mathematical problems, what uncertainty changes bring to the decision process, and what techniques help to manage uncertainty in solving the problems.
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Titre: | Introduction to Stochastic Programming (Springer Series in Operations Research and Financial Engineering) |
ISBN: | 1461402360 |
Informations détaillées sur le livre - Introduction to Stochastic Programming (Springer Series in Operations Research and Financial Engineering)
EAN (ISBN-13): 9781461402367
ISBN (ISBN-10): 1461402360
Version reliée
Livre de poche
Date de parution: 20110620
Editeur: Springer-Verlag GmbH
485 Pages
Poids: 1,080 kg
Langue: Englisch
Livre dans la base de données depuis 07.11.2009 23:22:14
Livre trouvé récemment le 04.02.2017 22:44:21
ISBN/EAN: 1461402360
ISBN - Autres types d'écriture:
1-4614-0236-0, 978-1-4614-0236-7
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