English

Logical fermions for fault-tolerant quantum simulation

Quantum Physics 2023-07-10 v3

Abstract

We show how to absorb fermionic quantum simulation's expensive fermion-to-qubit mapping overhead into the overhead already incurred by surface-code-based fault-tolerant quantum computing. The key idea is to process information in surface-code twist defects, which behave like logical Majorana fermions. Our approach encodes Dirac fermions, a key data type for simulation applications, directly into logical Majorana fermions rather than atop a logical qubit layer in the architecture. Using quantum simulation of the NN-fermion 2D Fermi-Hubbard model as an exemplar, we demonstrate two immediate algorithmic improvements. First, by preserving the model's locality at the logical level, we reduce the asymptotic Trotter-Suzuki quantum circuit depth from O(N)\mathcal{O}(\sqrt{N}) in a typical Jordan-Wigner encoding to O(1)\mathcal{O}(1) in our encoding. Second, by exploiting optimizations manifest for logical fermions but less obvious for logical qubits, we reduce the TT-count of the block-encoding \textsc{select} oracle by 20\% over standard implementations, even when realized by logical qubits and not logical fermions.

Keywords

Cite

@article{arxiv.2110.10280,
  title  = {Logical fermions for fault-tolerant quantum simulation},
  author = {Andrew J. Landahl and Benjamin C. A. Morrison},
  journal= {arXiv preprint arXiv:2110.10280},
  year   = {2023}
}

Comments

23 pages, 21 figures. v3 streamlines the title and makes minor corrections to the bibliography

R2 v1 2026-06-24T07:01:51.252Z