Local d'Alembertian for causal sets
arXiv:2506.18745 · doi:10.1103/np89-qzjp
Abstract
Causal set theory is an intrinsically nonlocal approach to quantum gravity, inheriting its nonlocality from Lorentzian nonlocality. This nonlocality causes problems in defining differential operators -- such as the d'Alembert operator, a cornerstone of any relativistic field theory -- within the causal set framework. It has been proposed that d'Alembertians in causal sets must themselves be nonlocal to respect causal set nonlocality. However, we show that such nonlocal d'Alembertians do not converge to the standard continuum d'Alembertian for some basic fields. To address this problem, we introduce a local d'Alembert operator for causal sets and demonstrate its convergence to its continuum counterpart for arbitrary fields in Minkowski spacetimes. Our construction leverages recent developments in measuring both timelike and spacelike distances in causal sets using only their intrinsic structure. This approach thus reconciles locality with Lorentz invariance, and paves a way toward defining converging discrete approximations to locality-based differential operators even in theories that are inherently nonlocal.
References in corpus (18)
- A Classical Sequential Growth Dynamics for Causal Sets
- The causal set approach to quantum gravity
- The Scalar Curvature of a Causal Set
- Causal set d'Alembertians for various dimensions
- Generalized Causal Set d'Alembertians
- On Recovering Continuum Topology from a Causal Set
- Spacelike distance from discrete causal order
- Evidence for a Phase Transition in 2D Causal Set Quantum Gravity
- A closed form expression for the causal set d'Alembertian
- Induced Spatial Geometry from Causal Structure
- On the Causal Set-Continuum Correspondence
- Observables in Extended Percolation Models of Causal Set Cosmology
- A 2D model of Causal Set Quantum Gravity: The emergence of the continuum
- The continuum limit of a 4-dimensional causal set scalar d'Alembertian
- On the continuum limit of Benincasa-Dowker-Glaser causal set action
- Electromagnetic waves and Stokes parameters in the wake of a gravitational wave
- Measuring spatial distances in causal sets via causal overlaps
- Timelike boundary and corner terms in the causal set action