Single-shot and measurement-based quantum error correction via fault complexes
Artikel i vetenskaplig tidskrift, 2025

Photonics provides a viable path to a scalable fault-tolerant quantum computer. The natural framework for this platform is measurement-based quantum computation, where fault-tolerant graph states supersede traditional quantum error-correcting codes. However, the existing formalism for foliation—the construction of fault-tolerant graph states—does not reveal how certain properties, such as single-shot error correction, manifest in the measurement-based setting. We introduce the fault complex, a representation of dynamic quantum errorcorrection protocols particularly well suited to describe foliation. Our approach enables precise computation of fault tolerance properties of foliated codes and provides insights into circuit-based quantum computation. Analyzing the fault complex yields improved thresholds for three- and four-dimensional toric codes, a generalization of stability experiments, and the existence of single-shot lattice surgery with higher-dimensional topological

Quantum information processing

Quantum error correction

Quantum information processing with continuous variables

Författare

Timo Hillmann

Xanadu

Chalmers, Mikroteknologi och nanovetenskap, Tillämpad kvantfysik

Guillaume Dauphinais

Xanadu

Ilan Tzitrin

Xanadu

Michael Vasmer

Institute for Quantum Computing

Xanadu

Perimeter Institute for Theoretical Physics

Physical Review A

24699926 (ISSN) 24699934 (eISSN)

Vol. 112 4

Ämneskategorier (SSIF 2025)

Annan fysik

DOI

10.1103/cjb4-l57n

Mer information

Senast uppdaterat

2025-11-05