Covariant Information Theory and Emergent Gravity
Vitaly Vanchurin

TL;DR
This paper develops a covariant information-theoretic framework linking statistical dependencies to emergent gravitational dynamics, showing that Einstein-Hilbert gravity arises from non-equilibrium thermodynamics of information.
Contribution
It introduces a covariant information-computation tensor and demonstrates that Einstein gravity emerges from the thermodynamics of information far from equilibrium.
Findings
The information-computation tensor satisfies conservation equations.
The inverse metric is conjugate to the information tensor in thermodynamics.
Einstein-Hilbert action arises from symmetric Onsager tensor in non-equilibrium conditions.
Abstract
Informational dependence between statistical or quantum subsystems can be described with Fisher matrix or Fubini-Study metric obtained from variations of the sample/configuration space coordinates. Using these non-covariant objects as macroscopic constraints we consider statistical ensembles over the space of classical probability distributions or quantum wave-functions. The ensembles are covariantized using dual field theories with either complex or real scalar fields identified with complex wave-functions or square root of probabilities. We argue that a full space-time covariance on a field theory side is dual to local computations on the information theory side. We define a fully covariant information-computation tensor and show that it must satisfy conservation equations. Then we switch to a thermodynamic description and argue that the (inverse of) space-time metric tensor is a…
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