Supply Chain Disruption Management Using Stochastic Mixed Integer Programming

This book deals with stochastic combinatorial optimization problems in supply chain disruption management, with a particular focus on management of disrupted flows in customer-driven supply chains. The problems are modeled using a scenario based stochastic mixed integer programming to address risk-n...

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Bibliographische Detailangaben
1. Verfasser: Sawik, Tadeusz (VerfasserIn)
Format: Elektronisch E-Book
Sprache:Englisch
Veröffentlicht: Cham : Springer International Publishing, 2018.
Ausgabe:1st ed. 2018.
Schriftenreihe:International Series in Operations Research & Management Science, 256
Schlagworte:
ISBN:9783319588230
ISSN:0884-8289 ;
Online-Zugang: Volltext
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245 1 0 |a Supply Chain Disruption Management Using Stochastic Mixed Integer Programming  |h [electronic resource] /  |c by Tadeusz Sawik. 
250 |a 1st ed. 2018. 
260 1 |a Cham :  |b Springer International Publishing,  |c 2018. 
300 |a XXX, 349 p. 61 illus., 57 illus. in color.  |b online resource. 
490 1 |a International Series in Operations Research & Management Science,  |x 0884-8289 ;  |v 256 
500 |a Business and Management  
505 0 |a Chapter 1. Introduction -- Chapter 2. Selection of Static Supply Portfolio -- Chapter 3. Selection of Dynamic Supply Portfolio -- Chapter 4. Selection of Resilient Supply Portfolio -- Chapter 5. Integrated Selection of Supply Portfolio and Scheduling of Production -- Chapter 6. Integrated Selection of Supply Portfolio and Scheduling of Production and Distribution -- Chapter 7. A Fair Decision-Making under Disruption Risks -- Chapter 8. A Robust Decision-Making under Disruption Risks -- Chapter 9. Selection of Primary and Recovery Supply Portfolio and Scheduling -- Chapter 10. Selection of Primary and Recovery Supply and Demand Portfolios and Scheduling -- Chapter 11. Selection of Cybersecurity Safeguards Portfolio. 
516 |a text file PDF 
520 |a This book deals with stochastic combinatorial optimization problems in supply chain disruption management, with a particular focus on management of disrupted flows in customer-driven supply chains. The problems are modeled using a scenario based stochastic mixed integer programming to address risk-neutral, risk-averse and mean-risk decision-making in the presence of supply chain disruption risks. The book focuses on innovative, computationally efficient portfolio approaches to supply chain disruption management, e.g., selection of primary and recovery supply portfolios, demand portfolios, capacity portfolios, etc. Numerous computational examples throughout the book, modeled in part on real-world supply chain disruption management problems, illustrate the material presented and provide managerial insights. In the computational examples, the proposed mathematical programming models are solved using an advanced algebraic modeling language such as AMPL and CPLEX, GUROBI and XPRESS solvers. The knowledge and tools provided in the book allow the reader to model and solve supply chain disruption management problems using commercially available software for mixed integer programming. Using the end-of chapter problems and exercises, the monograph can also be used as a textbook for an advanced course in supply chain risk management. After an introductory chapter, the book is then divided into five main parts. Part I addresses selection of a supply portfolio; Part II considers integrated selection of supply portfolio and scheduling; Part III looks at integrated, equitably efficient selection of supply portfolio and scheduling; Part IV examines integrated selection of primary and recovery supply (and demand) portfolios and scheduling; and Part V addresses disruption management of information flows in supply chains. 
650 0 |a Operations research. 
650 0 |a Decision making. 
650 0 |a Business logistics. 
650 0 |a Industrial engineering. 
650 0 |a Production engineering. 
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