English

Entropic Dynamics: Reconstructing Quantum Field Theory in Curved Space-time

General Relativity and Quantum Cosmology 2020-01-08 v3 High Energy Physics - Theory Quantum Physics

Abstract

The Entropic Dynamics reconstruction of quantum mechanics is extended to quantum field theory in curved space-time. The Entropic Dynamics framework, which derives quantum theory as an application of the method of maximum entropy, is combined with the covariant methods of Dirac, Hojman, Kucha\v{r}, and Teitelboim, which they used to develop a framework for classical covariant Hamiltonian theories. The goal is to formulate an information-based alternative to current approaches based on algebraic quantum field theory. One key ingredient is the adoption of a local notion of entropic time in which instants are defined on curved three-dimensional surfaces and time evolution consists of the accumulation of changes induced by local deformations of these surfaces. The resulting dynamics is a non-dissipative diffusion that is constrained by the requirements of foliation invariance and incorporates the necessary local quantum potentials. As applications of the formalism we derive the Ehrenfest relations for fields in curved-spacetime and briefly discuss the nature of divergences in quantum field theory.

Keywords

Cite

@article{arxiv.1803.07493,
  title  = {Entropic Dynamics: Reconstructing Quantum Field Theory in Curved Space-time},
  author = {Selman Ipek and Mohammad Abedi and Ariel Caticha},
  journal= {arXiv preprint arXiv:1803.07493},
  year   = {2020}
}

Comments

V2 contains added comments on reconstructing QFT, on QFT divergences, various improvements in style, and corrects some typos. V3 contains new section containing applications, including a derivation of the Ehrenfest relations for a quantum scalar field in curved space-time

R2 v1 2026-06-23T00:59:04.198Z