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Exploring the Synergy Between Industrial Ecology and System of Systems to Understand Complexity

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  • Daniel A. DeLaurentis
  • Sricharan Ayyalasomayajula

Abstract

Two objectives are pursued in this article. First, from a methodological perspective, we explore the relationships among the constructs of complex adaptive systems, systems of systems, and industrial ecology. Through examination of central traits of each, we find that industrial ecology and system of systems present complementary frameworks for posing systemic problems in the context of sociotechnical applications. Furthermore, we contend that complexity science (the basis for the study of complex adaptive systems) provides a natural and necessary foundation and set of tools to analyze mechanisms such as evolution, emergence, and regulation in these applications. The second objective of the article is to illustrate the use of two tools from complexity sciences to address a network transition problem in air transportation framed from the system‐of‐systems viewpoint and shaped by an industrial ecology perspective. A stochastic simulation consisting of network theory analysis combined with agent‐based modeling to study the evolution of an air transport network is presented. Patterns in agent behavior that lead to preferred outcomes across two scenarios are observed, and the implications of these results for decision makers are described. Furthermore, we highlight the necessity for future efforts to combine the merits of both system of systems and industrial ecology in tackling the issues of complexity in such large‐scale, sociotechnical problems.

Suggested Citation

  • Daniel A. DeLaurentis & Sricharan Ayyalasomayajula, 2009. "Exploring the Synergy Between Industrial Ecology and System of Systems to Understand Complexity," Journal of Industrial Ecology, Yale University, vol. 13(2), pages 247-263, April.
  • Handle: RePEc:bla:inecol:v:13:y:2009:i:2:p:247-263
    DOI: 10.1111/j.1530-9290.2009.00121.x
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    Cited by:

    1. W. Clifton Baldwin & John T. Boardman & Brian J. Sauser, 2013. "Expanding a System of Systems Model with the Schelling Segregation Model," Systems Research and Behavioral Science, Wiley Blackwell, vol. 30(1), pages 65-75, January.
    2. Marian R. Chertow & Thomas E. Graedel & Koichi S. Kanaoka & Jooyoung Park, 2020. "The Hawaiian Islands: Conceptualizing an Industrial Ecology Holarchic System," Sustainability, MDPI, vol. 12(8), pages 1-17, April.
    3. Fabian Heitmann & Claudia Pahl-Wostl & Stefanie Engel, 2019. "Requirements Based Design of Environmental System of Systems: Development and Application of a Nexus Design Framework," Sustainability, MDPI, vol. 11(12), pages 1-22, June.
    4. Phillis, Yannis A. & Kouikoglou, Vassilis S., 2012. "System-of-Systems hierarchy of biodiversity conservation problems," Ecological Modelling, Elsevier, vol. 235, pages 36-48.
    5. Alfaro, Jose F. & Miller, Shelie & Johnson, Jeremiah X. & Riolo, Rick R., 2017. "Improving rural electricity system planning: An agent-based model for stakeholder engagement and decision making," Energy Policy, Elsevier, vol. 101(C), pages 317-331.

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