Submitted:
11 February 2026
Posted:
12 February 2026
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Abstract

Keywords:
1. Introduction
2. Structural Commitment
2.1. Definition
- Symmetry breaking events that select specific vacuum states.
- Recombination, which enables stable atoms.
- Gravitational collapse leading to virialised structures.
- The formation of long-lived astrophysical systems.
2.2. Commitment Versus Entropy
- 1.
- Diffusion within the currently accessible state space.
- 2.
- Progressive restriction of that state space through irreversible transitions.
3. Memory as the Surface of Constraint
The memory kernel is the mathematical shadow of accumulated structural commitments.
4. Hierarchy of Structural Commitment
- Local commitments associated with virialisation and bulk flows.
- Intermediate commitments tied to large-scale structure.
- Global commitments encoded in the background expansion.
5. A Minimal Formal Framework

6. The Arrow of Time Revisited
- Irreversibility possesses a structural dimension beyond its statistical description.
- History becomes dynamically active through constraint geometry.
- Temporal asymmetry strengthens as structure accumulates.
7. Predictions and Testable Consequences
7.1. Increasing History Sensitivity
7.2. Emergent Long Memory Horizons
7.3. Constraint-Driven Stability
8. Implications for Cosmology
9. Gravity as a Generator of Commitment
10. Scope and Outlook
- Embedding constraint operators within relativistic averaging schemes.
- Extending multiscale kernel measurements across simulations and surveys.
- Exploring connections between constraint formation and information-theoretic descriptions of gravity.
11. Conclusion
References
- Boltzmann, L. Further Studies on the Thermal Equilibrium of Gas Molecules. Wiener Berichte 1872. Foundational work underlying statistical interpretations of entropy.
- Buchert, T. On Average Properties of Inhomogeneous Fluids in General Relativity. General Relativity and Gravitation 2000, 32, 105–125.
- Penrose, R. The Emperor’s New Mind; Oxford University Press, 1989. Discussion of gravitational entropy and the arrow of time.
- Atalebe, S. Infinite Memory Horizons and Late-Time Cosmology. Preprint 2025. Constrains long-horizon kernels using H(z) and growth data.
- Atalebe, S. Scale Dependent Memory in Cosmological Backreactions: From Local Viscosity to Global Information Drag. zenodo 2026.
- Atalebe, S. Virialisation as Viscosity: Deriving the ITP Cosmological Memory Kernel from TNG300. Preprint 2026.
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