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April 19, 20260 citationsOpen Access

Disorder-Driven Degradation of Emergent Gravitational Scaling in Small-World Networks

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JTJuan Carlos Alves Tabernero

Key Points

  • The research aims to investigate how disorder affects gravitational scaling in small-world networks.
  • Utilized graph Laplacians on Watts–Strogatz networks
  • Conducted finite-size scaling analysis
  • Analyzed scaling collapse of normalized observables
  • Observed transition from power-law decay in ordered regimes to degradation in disordered regimes
  • Critical threshold shifts toward zero as system size increases
  • Findings indicate sensitivity of scaling behavior to local structural order

Abstract

This work investigates the emergence and stability of gravity-like scaling behavior in discrete graph-based systems. Using scalar fields defined via graph Laplacians on Watts–Strogatz networks, we observe a transition-like behavior from ordered regimes exhibiting power-law decay to disordered regimes where this behavior progressively degrades. A finite-size scaling analysis reveals that the apparent critical threshold depends strongly on system size, shifting toward zero as the system grows. This indicates that the observed transition is not governed by a universal critical point, but instead arises from finite-size effects and the loss of local geometric coherence. We further analyze the scaling collapse of the normalized observable and find partial agreement across different system sizes, with deviations attributable to finite-size limitations. These results suggest that emergent gravitational behavior is highly sensitive to local structural order and may not be a generic property of arbitrary discrete systems. This work contributes to the broader effort of understanding gravity as an emergent phenomenon arising from discrete underlying structures.

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Cite This Study

Juan Carlos Alves Tabernero (2026) studied this question.

synapsesocial.com/papers/69e4745f010ef96374d902b8https://doi.org/10.5281/zenodo.19635861
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