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Pyomo — Optimization Modeling in Python / by William E. Hart, Carl D. Laird, Jean-Paul Watson, David L. Woodruff, Gabriel A. Hackebeil, Bethany L. Nicholson, John D. Siirola
(Springer Optimization and Its Applications. ISSN:19316836 ; 67)

2nd ed. 2017.
出版者 Cham : Springer International Publishing : Imprint: Springer
出版年 2017
本文言語 英語
大きさ XVIII, 277 p. 13 illus., 8 illus. in color : online resource
著者標目 *Hart, William E author
Laird, Carl D author
Watson, Jean-Paul author
Woodruff, David L author
Hackebeil, Gabriel A author
Nicholson, Bethany L author
Siirola, John D author
SpringerLink (Online service)
件 名 LCSH:Mathematical optimization
LCSH:Computer simulation
LCSH:Mathematics -- Data processing  全ての件名で検索
LCSH:Computer science -- Mathematics  全ての件名で検索
LCSH:Computer software
LCSH:Operations research
LCSH:Management science
FREE:Optimization
FREE:Computer Modelling
FREE:Computational Mathematics and Numerical Analysis
FREE:Mathematical Applications in Computer Science
FREE:Mathematical Software
FREE:Operations Research, Management Science
一般注記 1. Introduction -- Part I. An Introduction to Pyomo -- 2. Mathematical Modeling and Optimization -- 3. Pyomo Overview -- 4. Pyomo Models and Components -- 5. The Pyomo Command -- 6. Data Command Files -- Part II. Advanced Features and Extensions -- 7. Nonlinear Programming with Pyomo -- 8. Structured Modeling with Blocks -- 9. Generalized Disjunctive Programming -- 10. Stochastic Programming Extensions -- 11. Differential Algebraic Equations -- 12. Mathematical Programs with Equilibrium Constraints -- 13. Bilevel Programming -- 14. Scripting -- A. A Brief Python Tutorial -- Index
This book provides a complete and comprehensive guide to Pyomo (Python Optimization Modeling Objects) for beginning and advanced modelers, including students at the undergraduate and graduate levels, academic researchers, and practitioners. Using many examples to illustrate the different techniques useful for formulating models, this text beautifully elucidates the breadth of modeling capabilities that are supported by Pyomo and its handling of complex real-world applications. This second edition provides an expanded presentation of Pyomo’s modeling capabilities, providing a broader description of the software that will enable the user to develop and optimize models. Introductory chapters have been revised to extend tutorials; chapters that discuss advanced features now include the new functionalities added to Pyomo since the first edition including generalized disjunctive programming, mathematical programming with equilibrium constraints, and bilevel programming. Pyomo is an open source software package for formulating and solving large-scale optimization problems. The software extends the modeling approach supported by modern AML (Algebraic Modeling Language) tools. Pyomo is a flexible, extensible, and portable AML that is embedded in Python, a full-featured scripting language. Python is a powerful and dynamic programming language that has a very clear, readable syntax and intuitive object orientation. Pyomo includes Python classes for defining sparse sets, parameters, and variables, which can be used to formulate algebraic expressions that define objectives and constraints. Moreover, Pyomo can be used from a command-line interface and within Python's interactive command environment, which makes it easy to create Pyomo models, apply a variety of optimizers, and examine solutions. Review of the first edition: Documents a simple, yet versatile tool for modeling and solving optimization problems. … The book, by Bill Hart, CarlLaird, Jean-Paul Watson, and David Woodruff, is essential to the usability of Pyomo, serving as the Pyomo documentation. … has contents for both an inexperienced user, and a computational operations research expert. … with examples of each of the concepts discussed. —Nedialko B. Dimitrov, INFORMS Journal on Computing, Vol. 24 (4), Fall 2012
HTTP:URL=https://doi.org/10.1007/978-3-319-58821-6
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Springer eBooks 9783319588216
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書誌ID 4000115406
ISBN 9783319588216

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