Related Experiment Video
Updated: Dec 6, 2025

Sealable Femtoliter Chamber Arrays for Cell-free Biology
Published on: March 11, 2015
Tipping point and noise-induced transients in ecological networks
Yu Meng1, Ying-Cheng Lai2,3, Celso Grebogi1
1Institute for Complex Systems and Mathematical Biology, School of Natural and Computing Sciences, King's College, University of Aberdeen, Aberdeen AB24 3UE, UK.
Abstract:
A challenging and outstanding problem in interdisciplinary research is to understand the interplay between transients and stochasticity in high-dimensional dynamical systems. Focusing on the tipping-point dynamics in complex mutualistic networks in ecology constructed from empirical data, we investigate the phenomena of noise-induced collapse and noise-induced recovery. Two types of noise are studied: environmental (Gaussian white) noise and state-dependent demographic noise. The dynamical mechanism responsible for both phenomena is a transition from one stable steady state to another driven by stochastic forcing, mediated by an unstable steady state. Exploiting a generic and effective two-dimensional reduced model for real-world mutualistic networks, we find that the average transient lifetime scales algebraically with the noise amplitude, for both environmental and demographic noise. We develop a physical understanding of the scaling laws through an analysis of the mean first passage time from one steady state to another. The phenomena of noise-induced collapse and recovery and the associated scaling laws have implications for managing high-dimensional ecological systems.
More Related Videos
Related Concept Videos
Ecological Disturbance
Ecological Niches
Limits to Natural Selection
Mutation, Gene Flow, and Genetic Drift
Social Traps
Causality in Epidemiology

