Free quantum field theory from quantum cellular automata: derivation of Weyl, Dirac and Maxwell quantum cellular automata
arXiv:1601.04832 · doi:10.1007/s10701-015-9934-1
Abstract
After leading to a new axiomatic derivation of quantum theory, the new informational paradigm is entering the domain of quantum field theory, suggesting a quantum automata framework that can be regarded as an extension of quantum field theory to including an hypothetical Planck scale, and with the usual quantum field theory recovered in the relativistic limit of small wave-vectors. Being derived from simple principles (linearity, unitarity, locality, homogeneity, isotropy, and minimality of dimension), the automata theory is quantum ab-initio, and does not assume Lorentz covariance and mechanical notions. Being discrete it can describe localized states and measurements (unmanageable by quantum field theory), solving all the issues plaguing field theory originated from the continuum. These features make the theory an ideal framework for quantum gravity, with relativistic covariance and space-time emergent solely from the interactions, and not assumed a priori. The paper presents a synthetic derivation of the automata theory, showing how from the principles lead to a description in terms of a quantum automaton over a Cayley graph of a group. Restricting to Abelian groups we show how the automata recover the Weyl, Dirac and Maxwell dynamics in the relativistic limit. We conclude with some new routes about the more general scenario of non-Abelian Cayley graphs.
10 pages
References in corpus (3)
Cited by in corpus (13)
- A review of Quantum Cellular Automata
- Physics Without Physics: The Power of Information-theoretical Principles
- Quantum cellular automata and quantum field theory in two spatial dimensions
- Quantum field theory from a quantum cellular automaton in one spatial dimension and a no-go theorem in higher dimensions
- Quantum walks, deformed relativity, and Hopf algebra symmetries
- Quantum cellular automata for quantum error correction and density classification
- Chirality from quantum walks without quantum coin
- Discrete time Dirac quantum walk in 3+1 dimensions
- An algorithm to factorize quantum walks into shift and coin operations
- A no-go theorem for theories that decohere to quantum mechanics
- Quantum Electrodynamics from Quantum Cellular Automata, and the Tension Between Symmetry, Locality and Positive Energy
- Dynamic logic assigned to automata
- Bounds on QCA Lattice Spacing from Data on Lorentz Violation