How the arrow of time emerges from incomplete knowledge: a path-integral approach

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Main Authors: Mlada, Katerina, Pavelka, Michal, Klika, Vaclav
Format: Preprint
Published: 2025
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author Mlada, Katerina
Pavelka, Michal
Klika, Vaclav
author_facet Mlada, Katerina
Pavelka, Michal
Klika, Vaclav
contents How does the arrow of time (dissipative, irreversible behavior) emerge from time-reversible Hamiltonian mechanics? Two ingredients are needed: the underlying system must be ergodic or phase-mixing, and our knowledge of the system must be incomplete. When the detailed dynamics explores its phase space and stays close to a submanifold parametrized by a reduced set of state variables, the lack-of-fit reduction method reveals that the effective equations for those reduced variables are necessarily irreversible. To make this precise, we present a path-integral formulation of the lack-of-fit reduction in non-equilibrium thermodynamics, which shows how the GENERIC framework (reversible Hamiltonian part plus irreversible gradient flow) emerges from purely Hamiltonian mechanics without any fitting parameters. The formulation is based on the Onsager-Machlup variational principle, and it yields reduced dynamical equations by minimizing the information discrepancy between the detailed and reduced evolutions. Subsequently, the reduction method is illustrated on the Kac--Zwanzig model, confirming that dissipation emerges solely from ignoring degrees of freedom, and on diffusion, where a formula for the diffusion constant in an almost ideal gas is derived. We also show how to generalize the Fisher information matrix and Kullback--Leibler divergence to arbitrary concave entropies via the principle of maximum entropy, including non-Boltzmann-Gibbs cases such as the Tsallis--Havrda--Charvat entropy.
format Preprint
id arxiv_https___arxiv_org_abs_2506_20242
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle How the arrow of time emerges from incomplete knowledge: a path-integral approach
Mlada, Katerina
Pavelka, Michal
Klika, Vaclav
Statistical Mechanics
Mathematical Physics
How does the arrow of time (dissipative, irreversible behavior) emerge from time-reversible Hamiltonian mechanics? Two ingredients are needed: the underlying system must be ergodic or phase-mixing, and our knowledge of the system must be incomplete. When the detailed dynamics explores its phase space and stays close to a submanifold parametrized by a reduced set of state variables, the lack-of-fit reduction method reveals that the effective equations for those reduced variables are necessarily irreversible. To make this precise, we present a path-integral formulation of the lack-of-fit reduction in non-equilibrium thermodynamics, which shows how the GENERIC framework (reversible Hamiltonian part plus irreversible gradient flow) emerges from purely Hamiltonian mechanics without any fitting parameters. The formulation is based on the Onsager-Machlup variational principle, and it yields reduced dynamical equations by minimizing the information discrepancy between the detailed and reduced evolutions. Subsequently, the reduction method is illustrated on the Kac--Zwanzig model, confirming that dissipation emerges solely from ignoring degrees of freedom, and on diffusion, where a formula for the diffusion constant in an almost ideal gas is derived. We also show how to generalize the Fisher information matrix and Kullback--Leibler divergence to arbitrary concave entropies via the principle of maximum entropy, including non-Boltzmann-Gibbs cases such as the Tsallis--Havrda--Charvat entropy.
title How the arrow of time emerges from incomplete knowledge: a path-integral approach
topic Statistical Mechanics
Mathematical Physics
url https://arxiv.org/abs/2506.20242