Tracking Quantum Error Correction
Kosuke Fukui, Akihisa Tomita, and Atsushi Okamoto

TL;DR
This paper introduces tracking quantum error correction to reduce the number of qubits needed in large-scale fault-tolerant quantum computation with GKP qubits by leveraging analog information for efficient error correction.
Contribution
It proposes a novel method that replaces part of logical-qubit error correction with single-qubit correction, significantly reducing qubit requirements in quantum computing.
Findings
Reduces qubit count during error correction by a calculable rate.
Achieves performance comparable to logical-qubit correction using analog information.
Demonstrates practical advantages for large-scale quantum computation with GKP qubits.
Abstract
To implement fault-tolerant quantum computation with continuous variables, the Gottesman--Kitaev--Preskill (GKP) qubit has been recognized as an important technological element. We have proposed a method to reduce the required squeezing level to realize large scale quantum computation with the GKP qubit [Phys. Rev. X. {\bf 8}, 021054 (2018)], harnessing the virtue of analog information in the GKP qubits. In the present work, to reduce the number of qubits required for large scale quantum computation, we propose the tracking quantum error correction, where the logical-qubit level quantum error correction is partially substituted by the single-qubit level quantum error correction. In the proposed method, the analog quantum error correction is utilized to make the performances of the single-qubit level quantum error correction almost identical to those of the logical-qubit level quantum…
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