collaborators

5 papers

quant-ph2026

Error correction on an array of superconducting qubits with defective components

Julien M. Drouet, Xanda C. Kolesnikow, Campbell K. McLauchlan +6

A solid-state quantum-computing architecture will require the fabrication of arrays of many coupled qubits. It is inevitable that this process will produce qubits and couplers with…

quant-ph2026

Vine Codes: Low-Overhead Quantum LDPC Codes on a Planar Square Grid

Georgia M. Nixon, Campbell K. McLauchlan, Charles C. L. van Rest

The surface code is a promising route towards large-scale quantum computing, requiring only nearest-neighbour gates amenable to superconducting hardware. However, surface codes inc…

quant-ph2026

Scalable quantum error correction tailored for a heavy-hex qubit array

Seok-Hyung Lee, Xanda C. Kolesnikow, Jun Zen +7

To produce an operable quantum computer that is made with imperfect hardware, we must design and test scalable quantum error correcting codes that are suited for the devices we can…

quant-ph2026

Low-valency scalable quantum error correction with a dynamic compass code

Jun Zen, Xanda C. Kolesnikow, Campbell K. McLauchlan +6

The ongoing development of hardware that is capable of reliably executing general quantum algorithms requires quantum error-correcting codes that are both practical for realisation…

quant-ph2025

Characterising the failure mechanisms of error-corrected quantum logic gates

Robin Harper, Constance Lainé, Evan Hockings +4

Mid-circuit measurements used in quantum error correction are essential in quantum computer architecture, as they read out syndrome data and drive logic gates. Here, we use a heavy…