PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
February 16, 20268 citationsOpen Access

Homeostatic Basins and Dissipative Traps: A Substrate-Independent Topology of Dissipative Dynamics with Mathematical Proofs Across Three Canonical Systems

View Full Paper
JSJohn R. SmithSSHAI/HATI

Key Points

  • To define and differentiate the behaviors of homeostatic basins and dissipative traps in dissipative systems.
  • Employ Lyapunov functions with fast–slow decomposition for behavior analysis.
  • Examine three canonical systems: a single qubit, Scheffer lake eutrophication model, and damped double-well Duffing oscillator.
  • Identify universal and non-universal features related to bifurcation structure.
  • Demonstrated distinct behaviors of homeostatic basins and dissipative traps under mathematical frameworks.
  • Identified key features such as threshold bifurcation and Kullback-Leibler divergence in system dynamics.
  • Generated testable predictions based on the interpretive framework established.

Abstract

Abstract - We propose that dissipative open systems admitting a timescale separation into fast ob-servable variables and slow accumulating variables generically exhibit two classes of conver-gent behaviour: homeostatic basins (Lyapunov-stable with decreasing maintenance costand convergent slow variables) and dissipative traps (locally Lyapunov-stable in fast vari-ables but with monotonically accumulating slow-variable debt leading to threshold collapse).We formalise these definitions using Lyapunov functions with fast–slow decomposition, thencompute the distinction explicitly in three canonical systems: a single qubit under Lindbla-dian dynamics, the Scheffer lake eutrophication model, and a damped double-well Duffingoscillator. We identify three universal mathematical features (fast–slow decomposition withaccumulation, threshold bifurcation, non-monotonic Kullback-Leibler divergence) and threenon-universal features (spectral gap scaling, early warning signal type, physical meaning of“debt”) that depend on bifurcation structure. This is an interpretive reframing generatingtestable predictions, not a claim of new physics.Keywords: Lindbladian dynamics · dissipative systems · Lyapunov stability · fast–slow decom-position · critical transitions · early warning signals · attractor topology · homeostasis

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Smith et al. (2026) studied this question.

synapsesocial.com/papers/69926503eb1f82dc367a0d97https://doi.org/10.5281/zenodo.18638200
Ask AI
Helpful
Bookmark
Share
View Full Paper