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Interconnections Accelerate Collapse in a Socio-Ecological Metapopulation

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  • Zachary Dockstader

    (Department of Applied Mathematics, University of Waterloo, Waterloo, ON N2L 3G1, Canada)

  • Chris T. Bauch

    (Department of Applied Mathematics, University of Waterloo, Waterloo, ON N2L 3G1, Canada)

  • Madhur Anand

    (School of Environmental Sciences, University of Guelph, Guelph, ON N1G 2W1, Canada)

Abstract

Over-exploitation of natural resources can have profound effects on both ecosystems and their resident human populations. Simple theoretical models of the dynamics of a population of human harvesters and the abundance of a natural resource being harvested have been studied previously, but relatively few models consider the effect of metapopulation structure (i.e., a population distributed across discrete patches). Here we analyze a socio-ecological metapopulation model based on an existing single-population model used to study persistence and collapse in human populations. Resources grow logistically on each patch. Each population harvests resources on its own patch to support population growth, but can also harvest resources from other patches when their own patch resources become scarce. We show that when populations are allowed to harvest resources from other patches, the peak population size is higher, but subsequent population collapse is significantly accelerated and across a broader parameter regime. As the number of patches in the metapopulation increases, collapse is more sudden, more severe, and occurs sooner. These effects persist under scenarios of asymmetry and inequality between patches. Our model makes simplifying assumptions in order to facilitate insight and understanding of model dynamics. However, the robustness of the model prediction suggests that more sophisticated models should be developed to ascertain the impact of metapopulation structure on socio-ecological sustainability.

Suggested Citation

  • Zachary Dockstader & Chris T. Bauch & Madhur Anand, 2019. "Interconnections Accelerate Collapse in a Socio-Ecological Metapopulation," Sustainability, MDPI, vol. 11(7), pages 1-13, March.
  • Handle: RePEc:gam:jsusta:v:11:y:2019:i:7:p:1852-:d:217751
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    References listed on IDEAS

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