What Is Resilience? A Short Introduction

Chapter
Part of the Understanding Complex Systems book series (UCS)

Abstract

Agent-based complex systems such as economies, ecosystems, or societies, consist of autonomous agents such as organisms, humans, companies, or institutions that pursue their own objectives and interact with each other and their environment (Grimm et al., 2005). Fundamental questions about such systems address their stability properties: How long will these systems exist? How much do their characteristic features vary over time? Are they sensitive to disturbances? If so, will they recover to their original state, and if so, why, from what set of states, and how fast? These questions are so important because the mere existence of agent-based complex systems is, in contrast to many systems studied in physics or chemistry, not granted but intriguing, calling for an explanation (Jax et al. (1998)). The building blocks of these systems – organisms or human actors – do not have a blueprint of the entire system in mind and behave accordingly, but follow their own objectives. Nevertheless, system-level properties emerge which allow the identification of the systems and their behaviours over time. Tropical forests, for example, can be self-similar over thousands of years and reliably provide functions and services that are important for us. Systems can, however, also collapse and lose their identity and functions. For example, a stock market can crash, or a savanna can turn into a scrubland due to overgrazing, rendering it useless as rangeland (Scheffer et al., 2009).

Keywords

Stability Property Regime Shift Linear Stability Analysis Descriptive Definition Stability Concept 
These keywords were added by machine and not by the authors. This process is experimental and the keywords may be updated as the learning algorithm improves.

Notes

Acknowledgements

We would like to thank G. Deffuant, N. Gilbert, S. Martin, C. Roth, and D. Taraborelli for valuable comments on earlier drafts of this chapter.

References

  1. 1.
    Anderies JM, Janssen MA, Walker BH (2002) Grazing management, resilience, and the dynamics of a fire-driven rangeland system. Ecosystems 5:23–44CrossRefGoogle Scholar
  2. 2.
    Brand FS (2005) Ecological resilience and its relevance within a theory of sustainable development. Technical report, UFZGoogle Scholar
  3. 3.
    Brand FS, Jax K (2007) Focusing the meaning(s) of resilience: Resilience as a descriptive concept and a boundary object. Ecol Soc 12(1):23. [online] http://www.ecologyandsociety.org/vol12/iss1/art23/ Google Scholar
  4. 4.
    Calabrese JM, Vazquez F, SanMiguel M, Lopez C, Grimm V (2010) The individual and interactive effects of tree-tree establishment competition and fire on savanna structure and dynamics. Am Nat 175:E44–E65CrossRefGoogle Scholar
  5. 5.
    Carpenter SR, Walker BH, Anderies JM, Abel N (2001) From metaphor to measurement: resilience of what to what? Ecosystems 4:765–781CrossRefGoogle Scholar
  6. 6.
    Connell JH, Sousa WP (1983) On the evidence needed to judge ecological stability or persistence. Am Nat 121:789–824CrossRefGoogle Scholar
  7. 7.
    Folke C (2006) The economic perspective: Conservation against development versus conservation for development. Conserv Biol 20:686–688CrossRefGoogle Scholar
  8. 8.
    Grimm V, Revilla E, Berger U, Jeltsch F, Mooij WM, Railsback SF, Thulk HH, Weiner J, Wiegand T, DeAngelis DL (2005) Pattern-oriented modeling of agent-based complex systems: Lessons from ecology. Science 310:987–991CrossRefGoogle Scholar
  9. 9.
    Grimm V, Wissel C (1997) Babel, or the ecological stability discussions: An inventory and analysis of terminology and a guide for avoiding confusion. Oecologia 109:323–334CrossRefGoogle Scholar
  10. 10.
    Holling CS (2001) Understanding the complexity of economic, ecological, and social systems. Ecosystems 4:390–405CrossRefGoogle Scholar
  11. 11.
    Holling CS, Gunderson LH, Peterson GD (2002) Sustainability and panarchies. In: Gunderson LH, Holling CS (eds) Panarchy: Understanding transformations in human and natural systems. Island Press, WashingtonGoogle Scholar
  12. 12.
    Holling CS (1973) Resilience and stability of ecological systems. Annu Rev Ecol Evol Syst 4:1–24CrossRefGoogle Scholar
  13. 13.
    Holling CS, Gunderson LH (eds) (2002) Resilience and adaptive cycles. In: Panarchy: Understanding transformations in human and natural system, Island Press, WashingtonGoogle Scholar
  14. 14.
    Janssen MA, Schoon ML, Ke W, Borner K (2006) Scholarly networks on resilience, vulnerability and adaptation within the human dimensions of global environmental change. Global Environ Change 16:240–252CrossRefGoogle Scholar
  15. 15.
    Janssen MA (2007) An update on the scholarly networks on resilience, vulnerability, and adaptation within the human dimensions of global environmental change. Ecol Soc 12:9Google Scholar
  16. 16.
    Jax K, Jones GG, Pickett STA (1998) The self-identity of ecological units. Oikos 82:253–264CrossRefGoogle Scholar
  17. 17.
    Jeltsch F, Milton SJ, Dean WRJ, vanRooyen N (1997) Analysing shrub encroachment in the Southern Kalahari: A grid-based modelling approach. J Appl Ecol 34:1497–1509CrossRefGoogle Scholar
  18. 18.
    Jeltsch F, Moloney KA, Milton SJ (1999) Detecting process from snap-shot pattern: Lessons from tree spacing in the southern Kalahari. Oikos 85:451–467CrossRefGoogle Scholar
  19. 19.
    Jeltsch F, Weber GE, Grimm V (2000) Ecological buffering mechanisms in savannas: A unifying theory of long-term tree-grass coexistence. Plant Ecol 150:59–78CrossRefGoogle Scholar
  20. 20.
    Lawson T (1989) Abstraction, tendencies and stylised facts: A realist approach to economic analysis. Camb J Econ 13:59–78Google Scholar
  21. 21.
    Martin S (2004) The cost of restoration as a way of defining resilience: A viability approach applied to a model of lake eutrophication. Ecol Soc 9(2):8. [online] http://www.ecologyandsociety.org/vol9/iss2/art8/
  22. 22.
    May RM (1974) Stability and Complexity in Model Ecosystems. Princeton University Press, PrincetonGoogle Scholar
  23. 23.
    Otto SP, Day T (2007) Mathematical Modeling in Ecology and Biology. Princeton University Press, PrincetonGoogle Scholar
  24. 24.
    Pimm SL (1980) Food web design and the effect of species deletion. Oikos 35:139–149CrossRefGoogle Scholar
  25. 25.
    Scheffer M, Bascompte J, Brock WA, Carpenter V, Brovkinand SR, Dako V, Held H, vanNes EH, Rietkerk M, Sugihara G (2009) Early-warning signals for critical transitions. Nature 461:53–59CrossRefGoogle Scholar
  26. 26.
    Scheffer M, Carpenter SR (2003) Catastrophic regime shifts in ecosystems: Linking theory to observation. Trends Ecol Evol 18:648–656CrossRefGoogle Scholar
  27. 27.
    Schroeder A, Persson L, de Roos AM (2005) Direct experimental evidence for alternative stable states: A review. Oikos 110:3–19CrossRefGoogle Scholar
  28. 28.
    Schwegler H (1985) Ökologische Stäbilitat. Verh Ges Okol 13:263–270Google Scholar
  29. 29.
    Thulke HH, Grimm V (2010) Ecological models supporting management of wildlife diseases. In: Thorbek P, Forbes V, Heimbach F, Hommen U, Thulke HH, van den Brink PJ, Wogram J, Grimm V (eds) Ecological Models for Regulatory Risk Assessments of Pesticides: Developing a strategy for the future. Society of Environmental and Chemistry (SETAC) and CRC Press, Pensacola, pp 67–76Google Scholar
  30. 30.
    Walker B, Holling CS, Carpenter SR, Kinzig A (2004) Resilience, adaptability and transformability in social-ecological systems. Ecol Soc 9(2):5. [online] http://www.ecologyandsociety.org/vol9/iss2/art5 Google Scholar
  31. 31.
    Walker B, Gunderson L, Kinzig A, Folke C, Carpenter S, Schultz L (2006) A handful of heuristics and some propositions for understanding resilience in social-ecological systems. Ecol Soc 11:13. [online] http://www.ecologyandsociety.org/vol11/iss1/art13/ Google Scholar
  32. 32.
    Wissel C (1989) Theoretische Okologie. Springer, BerlinCrossRefGoogle Scholar

Copyright information

© Springer-Verlag Berlin Heidelberg 2011

Authors and Affiliations

  1. 1.Helmholtz Centre for Environmental Research-UFZLeipzigGermany
  2. 2.Smithsonian Conservation Biology InstituteFront RoyalUSA

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