arrow
Return

A framework of partial error correction for intermediate-scale quantum computers

delete2026-07-01
delete0
delete
OA
AI
N
Nikolaos Koukoulekidis *
S
Samson Wang
T
Tom O’Leary
D
Daniel Bultrini
L
Lukasz Cincio
DOI:10.1038/s41534-026-01301-3delete
deleteOriginal
deleteOriginal request for help
deleteShare
deleteSave
Abstract

Abstract

En 中文
As quantum computing hardware steadily increases in qubit count and quality, one important question is how to allocate these resources to mitigate the effects of hardware noise. In a transitional era between noisy small-scale and fully fault-tolerant systems, we envisage a scenario in which we are only able to error-correct a fraction of the qubits required to perform an interesting computation. In this work, we develop concrete constructions of logical operations on a joint system of a collection of noisy and a collection of error-corrected logical qubits. Within this setting and under Pauli noise assumptions, we provide analytic evidence that brick-layered circuits display on average slower concentration to the “useless” uniform distribution with increasing circuit depth compared to fully noisy circuits. We corroborate these findings by numerical demonstration of slower decoherence with an increasing fraction of error-corrected qubits under depolarizing noise acting at the circuit level. We find that this advantage only manifests when the number of error-corrected qubits passes a specified threshold which depends on the number of couplings between error-corrected and noisy registers.

Journal

npj Quantum Information cover
npj Quantum Information
IF:
8.3
Papers:
1.4K
Citations:
8.1K

Organization

D
department of physics
Scholars:
3.2K
Papers: 988
Citations: 0
L
los alamos national laboratory
Scholars:
702
Papers: 266
Citations: 0
P
physikalisch-chemisches institut
Scholars:
2
Papers: 1
Citations: 0
I
Institute of Theoretical Physics
Scholars:
108
Papers: 89
Citations: 1.7K
researcher View more organizations