Skip to content
Preprint

Error Correction in a Distributed Quantum Computer

Sep 2026 · 2 citations · 64 references
Physics

TL;DR

The first experimental demonstration of distributed quantum error detection and correction is reported, providing an experimental foundation for quantum error correction (QEC) across modular quantum architectures.

Abstract

Building fault-tolerant quantum computers with large numbers of logical qubits requires both scalable hardware architectures and error-correcting codes that make efficient use of physical qubits. Photonic interconnects address both of these challenges by allowing the physical qubits to be distributed across multiple processors while providing the non-local connectivity necessary to implement resource-efficient codes such as high-rate quantum low-density parity-check (qLDPC) codes. A key requirement for realising this architecture is the ability to perform stabiliser measurements between remote processors, which has not previously been demonstrated experimentally. Here we report the first experimental demonstration of distributed quantum error detection and correction. We generate entanglement between network qubits in two separate trapped-ion processors and use it to perform remote syndrome measurements on data qubits. We first realise a distributed [[2, 1, 1]] repetition code, detecting phase-flip errors on a logical qubit encoded across the two modules in real time and suppressing logical errors. We then combine these mid-circuit syndrome measurements with real-time feedforward to actively correct arbitrary single-qubit Pauli errors on a distributed Bell state. These results provide an experimental foundation for quantum error correction (QEC) across modular quantum architectures.

View source

Similar papers

Preprint Sep 2026

Modular fault-tolerant quantum computing on a non-CSS code

This work implements for the first time all logical operations required for modular fault-tolerant universal quantum computing with a non-Calderbank-Shor-Steane (CSS) code, the perfect $[[5, 1, 3]]$ code, on a trapped-ion quantum computer, and demonstrates the smallest quantum error-correcting (QEC) code capable of cor...

R. Freund, F. Butt, Cesar Benito et al. · 0 citations
Preprint Sep 2026

Experimental validation of a compact fault-tolerant architecture for trapped ions

Quantum error correction (QEC) is beginning to enable logical operations that outperform their unencoded physical counterparts, but useful fault-tolerant computation will require more than low-error quantum memory. An effective architecture must orchestrate efficient logical encoding, low-overhead logical operations, a...

Noah F. Berthusen, Ali Lavasani, Asmae Benhemou et al. · 0 citations
Preprint Sep 2026

Demonstration of a logical Bell-state measurement beyond the linear-optical limit

Fault tolerance is essential for scalable quantum technologies and is enabled by quantum error-correction codes. Bell-state measurements (BSMs) are a fundamental building block for modern quantum technologies such as measurement-based quantum computation and fusion-based quantum computation, as well as quantum networks...

Shreya Kumar, Simon D. Reiß, P. van Loock et al. · 0 citations
Preprint Sep 2026

Need One Bell-pair Only (NOBOL) for Low-Overhead Fault-Tolerant Quantum Computing

Fault-tolerant quantum computation fundamentally relies on encoding a logical qubit into a structured block of physical qubits, typically in the tens to hundreds. As a trade-off for improved fault-tolerance, logical gate operations will incur a linear overhead in terms of both the amount of time and quantum resources t...

Sean Grzenda, Shahram Babaie, Chun-Ming Qiao · 0 citations
Preprint Aug 2026

Real-time decoding of quantum error correction codes using high-performance computing

This work presents a scalable framework for real-time decoding in fault-tolerant quantum computing that can be readily applied to quantum-centric supercomputers that feature tight integration between QPU and HPC resources, thereby enabling efficient support for hybrid quantum-classical algorithms and computation-intens...

Ling-Ling Lao, Qiang Wang, Yuan-Qi Liu et al. · 1 citation
Preprint Aug 2026

Quantum error correction with global control

This work identifies a class of cyclic stabilizer codes realizable through global iSWAP and single-qubit gates, yielding QEC thresholds nearly seven orders of magnitude larger than previous estimates for globally-controlled arrays.

Roberto Menta, Lindsay Bassman Oftelie, Ashkan Abedi et al. · 2 citations

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.