Optimization hardness constrains ecological transients

Fuente: arXiv
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Main Author: Gilpin, William
Format: Preprint
Published: 2024
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_version_ 1866910909399564288
author Gilpin, William
author_facet Gilpin, William
contents Living systems operate far from equilibrium, yet few general frameworks provide global bounds on biological transients. In high-dimensional biological networks like ecosystems, long transients arise from the separate timescales of interactions within versus among subcommunities. Here, we use tools from computational complexity theory to frame equilibration in complex ecosystems as the process of solving an analogue optimization problem. We show that functional redundancies among species in an ecosystem produce difficult, ill-conditioned problems, which physically manifest as transient chaos. We find that the recent success of dimensionality reduction methods in describing ecological dynamics arises due to preconditioning, in which fast relaxation decouples from slow solving timescales. In evolutionary simulations, we show that selection for steady-state species diversity produces ill-conditioning, an effect quantifiable using scaling relations originally derived for numerical analysis of complex optimization problems. Our results demonstrate the physical toll of computational constraints on biological dynamics.
format Preprint
id arxiv_https___arxiv_org_abs_2403_19186
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Optimization hardness constrains ecological transients
Gilpin, William
Biological Physics
Optimization and Control
Chaotic Dynamics
Populations and Evolution
Living systems operate far from equilibrium, yet few general frameworks provide global bounds on biological transients. In high-dimensional biological networks like ecosystems, long transients arise from the separate timescales of interactions within versus among subcommunities. Here, we use tools from computational complexity theory to frame equilibration in complex ecosystems as the process of solving an analogue optimization problem. We show that functional redundancies among species in an ecosystem produce difficult, ill-conditioned problems, which physically manifest as transient chaos. We find that the recent success of dimensionality reduction methods in describing ecological dynamics arises due to preconditioning, in which fast relaxation decouples from slow solving timescales. In evolutionary simulations, we show that selection for steady-state species diversity produces ill-conditioning, an effect quantifiable using scaling relations originally derived for numerical analysis of complex optimization problems. Our results demonstrate the physical toll of computational constraints on biological dynamics.
title Optimization hardness constrains ecological transients
topic Biological Physics
Optimization and Control
Chaotic Dynamics
Populations and Evolution
url https://arxiv.org/abs/2403.19186