arXiv Analytics

Sign in

arXiv:2404.11663 [quant-ph]AbstractReferencesReviewsResources

Optimized measurement-free and fault-tolerant quantum error correction for neutral atoms

Stefano Veroni, Markus Müller, Giacomo Giudice

Published 2024-04-17Version 1

A major challenge in performing quantum error correction (QEC) is implementing reliable measurements and conditional feed-forward operations. In quantum computing platforms supporting unconditional qubit resets, or a constant supply of fresh qubits, alternative schemes which do not require measurements are possible. In such schemes, the error correction is realized via crafted coherent quantum feedback. We propose implementations of small measurement-free QEC schemes, which are fault-tolerant to circuit-level noise. These implementations are guided by several heuristics to achieve fault-tolerance: redundant syndrome information is extracted, and additional single-shot flag qubits are used. By carefully designing the circuit, the additional overhead of these measurement-free schemes is moderate compared to their conventional measurement-and-feed-forward counterparts. We highlight how this alternative approach paves the way towards implementing resource-efficient measurement-free QEC on neutral-atom arrays.

Related articles: Most relevant | Search more
arXiv:2206.08915 [quant-ph] (Published 2022-06-17)
Two-qubit gate in neutral atoms using transitionless quantum driving
arXiv:1702.00349 [quant-ph] (Published 2017-02-01)
Entangling two atoms of different isotopes via Rydberg blockade
Y. Zeng et al.
arXiv:1909.07628 [quant-ph] (Published 2019-09-17)
Fault-tolerant Quantum Error Correction on Near-term Quantum Processors using Flag and Bridge Qubits