Small-world complex network generation on a digital quantum processor
arXiv:2111.00167 · doi:10.1038/s41467-022-32056-y
Abstract
Quantum cellular automata (QCA) evolve qubits in a quantum circuit depending only on the states of their neighborhoods and model how rich physical complexity can emerge from a simple set of underlying dynamical rules. For instance, Goldilocks QCA depending on trade-off principles exhibit non-equilibrating coherent dynamics and generate complex mutual information networks, much like the brain. The inability of classical computers to simulate large quantum systems is a hindrance to understanding the physics of quantum cellular automata, but quantum computers offer an ideal simulation platform. Here we demonstrate the first experimental realization of QCA on a digital quantum processor, simulating a one-dimensional Goldilocks rule on chains of up to 23 superconducting qubits. Employing low-overhead calibration and error mitigation techniques, we calculate population dynamics and complex network measures indicating the formation of small-world mutual information networks. Unlike random states, these networks decohere at fixed circuit depth independent of system size; the largest of which corresponds to 1,056 two-qubit gates. Such computations may open the door to the employment of QCA in applications like the simulation of strongly-correlated matter or beyond-classical computational demonstrations.
References in corpus (6)
- Supplementary information for "Quantum supremacy using a programmable superconducting processor"
- Observation of separated dynamics of charge and spin in the Fermi-Hubbard model
- Accurately computing electronic properties of a quantum ring
- Satellite-based photonic quantum networks are small-world
- Quantum cellular automata and quantum field theory in two spatial dimensions
- Coarse-grained quantum cellular automata
Cited by in corpus (6)
- Quantum cellular automata for quantum error correction and density classification
- Integrability of Goldilocks quantum cellular automata
- Rule switching mechanisms in the Game of Life with synchronous and asynchronous updating policy
- Automated detection of symmetry-protected subspaces in quantum simulations
- Unveiling hidden features of the Kitaev model through a complex-network analysis
- Critical Dynamics of the Anderson Transition on Small-World Graphs