John Hooker Hooker Logic-Based Benders Decomposition

Logic-Based Benders Decomposition

von John Hooker

Theory and Applications

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Beschreibung

This book is the first comprehensive guide to logic-based Benders decomposition (LBBD), a general and versatile method for breaking large, complex optimization problems into components that are small enough for practical solution.  The author introduces logic-based Benders decomposition for optimization, which substantially generalizes the classical Benders method.  It can reduce solution times by orders of magnitude and allows decomposition to be applied to a much wider variety of optimization problems.  On the theoretical side, this book provides a full account of inference duality concepts that underlie LBBD, as well as a description of how LBBD can be combined with stochastic and robust optimization, heuristic methods, and decision diagrams.  It also clarifies the connection between LBBD and combinatorial Benders cuts for mixed integer programming.  On the practical side, it explains how LBBD has been applied to a rapidly growing variety of problem domains.  After describing basic theory, this book provides a comprehensive review of the rapidly growing literature that describes these applications, in each case explaining how LBBD is adapted to the problem at hand.  In doing so this work provides a sourcebook of ideas for applying LBBD to new problems as they arise.

This book is the first comprehensive guide to logic-based Benders decomposition (LBBD), a general and versatile method for breaking large, complex optimization problems into components that are small enough for practical solution.  The author introduces logic-based Benders decomposition for optimization, which substantially generalizes the classical Benders method.  It can reduce solution times by orders of magnitude and allows decomposition to be applied to a much wider variety of optimization problems.  On the theoretical side, this book provides a full account of inference duality concepts that underlie LBBD, as well as a description of how LBBD can be combined with stochastic and robust optimization, heuristic methods, and decision diagrams.  It also clarifies the connection between LBBD and combinatorial Benders cuts for mixed integer programming.  On the practical side, it explains how LBBD has been applied to a rapidly growingvariety of problem domains.  After describing basic theory, this book provides a comprehensive review of the rapidly growing literature that describes these applications, in each case explaining how LBBD is adapted to the problem at hand.  In doing so this work provides a sourcebook of ideas for applying LBBD to new problems as they arise.



Introduces logic-based Benders decomposition (LBBD) for optimization, which substantially generalizes the classical Benders method Provides a concise and accessible exposition of all the relevant concepts, including inference duality, branch-and-check methods, and application to two-stage stochastic and robust optimization models Explains how LBBD can be combined with stochastic and robust optimization, heuristic methods, and decision diagrams

Autor*in

John Hooker

Themen in »Logic-Based Benders Decomposition«

Logic-based Benders Decomposition Inference Duality Branch and Check Combinatorial Benders Cuts Planning and Scheduling Stochastic Optimization Robust Optimization

Stimmen zu »Logic-Based Benders Decomposition«

Details

ISBN: 9783031450396
Verlag: Springer International Publishing
Erscheinung: 18.11.2023

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