Rethinking tipping points in spatial ecosystems

Fuente: arXiv
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Auteurs principaux: Banerjee, Swarnendu, Baudena, Mara, Carter, Paul, Bastiaansen, Robbin, Doelman, Arjen, Rietkerk, Max
Format: Preprint
Publié: 2023
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author Banerjee, Swarnendu
Baudena, Mara
Carter, Paul
Bastiaansen, Robbin
Doelman, Arjen
Rietkerk, Max
author_facet Banerjee, Swarnendu
Baudena, Mara
Carter, Paul
Bastiaansen, Robbin
Doelman, Arjen
Rietkerk, Max
contents The theory of alternative stable states and tipping points has garnered substantial attention in the last several decades. It predicts potential critical transitions from one ecosystem state to a completely different state under increasing environmental stress. However, typically, ecosystem models that predict tipping do not resolve space explicitly. Ecosystems being inherently spatial, it is important to understand the effects of spatial processes. In fact, it has been argued that spatial dynamics can actually help ecosystems evade tipping. Here, using a dryland and a savanna-forest model as example systems, we provide a synthesis of several mechanisms by which spatial processes can change our predictions of tipping in ecosystems. We show that self-organized Turing patterns can emerge in drylands that help evade tipping, but that (non-Turing) patterns driven by environmental heterogeneity are key to evasion of tipping in humid savannas. Since the ecological interactions driving the dynamics of these ecosystems differ from each other, we suggest that tipping evasion mechanisms in ecosystems may be connected to the key ecological interactions in a system. This highlights the need for further research into the link between the two in order to formulate better strategies to make ecosystems resilient to global change.
format Preprint
id arxiv_https___arxiv_org_abs_2306_13571
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Rethinking tipping points in spatial ecosystems
Banerjee, Swarnendu
Baudena, Mara
Carter, Paul
Bastiaansen, Robbin
Doelman, Arjen
Rietkerk, Max
Pattern Formation and Solitons
Populations and Evolution
The theory of alternative stable states and tipping points has garnered substantial attention in the last several decades. It predicts potential critical transitions from one ecosystem state to a completely different state under increasing environmental stress. However, typically, ecosystem models that predict tipping do not resolve space explicitly. Ecosystems being inherently spatial, it is important to understand the effects of spatial processes. In fact, it has been argued that spatial dynamics can actually help ecosystems evade tipping. Here, using a dryland and a savanna-forest model as example systems, we provide a synthesis of several mechanisms by which spatial processes can change our predictions of tipping in ecosystems. We show that self-organized Turing patterns can emerge in drylands that help evade tipping, but that (non-Turing) patterns driven by environmental heterogeneity are key to evasion of tipping in humid savannas. Since the ecological interactions driving the dynamics of these ecosystems differ from each other, we suggest that tipping evasion mechanisms in ecosystems may be connected to the key ecological interactions in a system. This highlights the need for further research into the link between the two in order to formulate better strategies to make ecosystems resilient to global change.
title Rethinking tipping points in spatial ecosystems
topic Pattern Formation and Solitons
Populations and Evolution
url https://arxiv.org/abs/2306.13571