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October 11, 2025Physical review. A/Physical review, A3 citationsOpen Access

Single-shot and measurement-based quantum error correction via fault complexes

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THTimo HillmannGDGuillaume DauphinaisITIlan Tzitrin

Key Points

  • Single-shot error correction is enhanced by utilizing fault complexes in measurement-based quantum computation, showcasing significant advancements.
  • Fault complexes yield improved thresholds for both three- and four-dimensional toric codes, enhancing stability across systems.
  • Analysis of fault complexes offers a deeper understanding of dynamic quantum error-correction protocols and their implications.
  • This method suggests practical approaches for achieving fault-tolerant graph states in scalable photonic quantum computing applications.

Abstract

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 error-correction 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 codes.

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Cite This Study

Hillmann et al. (2025) studied this question.

synapsesocial.com/papers/68e9b1b5ba7d64b6fc131f2chttps://doi.org/10.1103/cjb4-l57n
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