Dynamics of discrete spacetimes with Quantum-enhanced Markov Chain Monte Carlo
Abstract
Quantum algorithms offer the potential for significant computational advantages; however, in many cases, it remains unclear how these advantages can be practically realized. Causal Set Theory is a discrete, Lorentz-invariant approach to quantum gravity which may be well positioned to benefit from quantum computing. In this work, we introduce a quantum algorithm that investigates the dynamics of causal sets by sampling the space of causal sets, improving on classical methods. Our approach builds on the quantum-enhanced Markov chain Monte Carlo technique developed by Layden et al. [Nature 619, 282 (2023)], adapting it to sample from the constrained spaces required for application. This is done by adding a constraint term to the Hamiltonian of the system. A qubit Hamiltonian representing the Benincasa-Dowker action (the causal set equivalent of the Einstein-Hilbert action) is also derived and used in the algorithm as the problem Hamiltonian. We achieve a super-quadratic quantum scaling advantage and, under some conditions, demonstrate a greater potential compared to classical approaches than previously observed in unconstrained QeMCMC implementations.
Keywords
Cite
@article{arxiv.2506.19538,
title = {Dynamics of discrete spacetimes with Quantum-enhanced Markov Chain Monte Carlo},
author = {Stuart Ferguson and Arad Nasiri and Petros Wallden},
journal= {arXiv preprint arXiv:2506.19538},
year = {2025}
}
Comments
11 pages, 4 figures