An approach for analyzing and managing flexibility in engineering systems design based on decision rules and multistage stochastic programming

This article introduces an approach to assess the value and manage flexibility in engineering systems design based on decision rules and stochastic programming. The approach differs from standard Real Options Analysis (ROA) that relies on dynamic programming in that it parameterizes the decision var...

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Published inIIE transactions Vol. 49; no. 1; pp. 1 - 12
Main Authors Cardin, Michel-Alexandre, Xie, Qihui, Ng, Tsan Sheng, Wang, Shuming, Hu, Junfei
Format Journal Article
LanguageEnglish
Published Abingdon Taylor & Francis 01.01.2017
Taylor & Francis Ltd
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ISSN2472-5854
2472-5862
DOI10.1080/0740817X.2016.1189627

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Abstract This article introduces an approach to assess the value and manage flexibility in engineering systems design based on decision rules and stochastic programming. The approach differs from standard Real Options Analysis (ROA) that relies on dynamic programming in that it parameterizes the decision variables used to design and manage the flexible system in operations. Decision rules are based on heuristic-triggering mechanisms that are used by Decision Makers (DMs) to determine when it is appropriate to exercise the flexibility. They can be treated similarly as, and combined with, physical design variables, and optimal values can be determined using multistage stochastic programming techniques. The proposed approach is applied as demonstration to the analysis of a flexible hybrid waste-to-energy system with two independent flexibility strategies under two independent uncertainty drivers in an urban environment subject to growing waste generation. Results show that the proposed approach recognizes the value of flexibility to a similar extent as the standard ROA. The form of the solution provides intuitive guidelines to DMs for exercising the flexibility in operations. The demonstration shows that the method is suitable to analyze complex systems and problems when multiple uncertainty sources and different flexibility strategies are considered simultaneously.
AbstractList This article introduces an approach to assess the value and manage flexibility in engineering systems design based on decision rules and stochastic programming. The approach differs from standard Real Options Analysis (ROA) that relies on dynamic programming in that it parameterizes the decision variables used to design and manage the flexible system in operations. Decision rules are based on heuristic-triggering mechanisms that are used by Decision Makers (DMs) to determine when it is appropriate to exercise the flexibility. They can be treated similarly as, and combined with, physical design variables, and optimal values can be determined using multistage stochastic programming techniques. The proposed approach is applied as demonstration to the analysis of a flexible hybrid waste-to-energy system with two independent flexibility strategies under two independent uncertainty drivers in an urban environment subject to growing waste generation. Results show that the proposed approach recognizes the value of flexibility to a similar extent as the standard ROA. The form of the solution provides intuitive guidelines to DMs for exercising the flexibility in operations. The demonstration shows that the method is suitable to analyze complex systems and problems when multiple uncertainty sources and different flexibility strategies are considered simultaneously.
Author Cardin, Michel-Alexandre
Hu, Junfei
Xie, Qihui
Ng, Tsan Sheng
Wang, Shuming
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  givenname: Qihui
  surname: Xie
  fullname: Xie, Qihui
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  organization: School of Economics and Management, University of the Chinese Academy of Sciences
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  givenname: Junfei
  surname: Hu
  fullname: Hu, Junfei
  organization: School of Management, Northwestern Polytechnic University
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SubjectTerms Complex systems
Decision analysis
decision rule
Dynamic programming
Flexibility
Flexibility in engineering design
Hybrid systems
real options analysis
Stochastic programming
Systems design
Uncertainty
Urban environments
Waste to energy
waste-to-energy system
Title An approach for analyzing and managing flexibility in engineering systems design based on decision rules and multistage stochastic programming
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