Distributed fault-tolerant quantum memories over a 2xL array of qubit modules
Edwin Tham, Min Ye, Ilia Khait, John Gamble, Nicolas Delfosse

TL;DR
This paper introduces a distributed quantum memory architecture over a 2xL array of modules using cyclic shifts for error correction, demonstrating its effectiveness with numerical simulations and physical implementation proposals.
Contribution
It presents a novel distributed quantum memory design employing cyclic shifts and LDPC codes, extending previous work to non-CSS codes and providing practical implementation strategies.
Findings
Distributed BB code achieves low logical error rate at realistic physical error rates.
The cyclic layout supports all stabilizer codes, broadening applicability.
Numerical simulations confirm the architecture's robustness and feasibility.
Abstract
We propose an architecture for a quantum memory distributed over a array of modules equipped with a cyclic shift implemented via flying qubits. The logical information is distributed across the first row of modules and quantum error correction is executed using ancilla modules on the second row equipped with a cyclic shift. This work proves that quantum LDPC codes such as BB codes can maintain their performance in a distributed setting while using solely one simple connector: a cyclic shift. We propose two strategies to perform quantum error correction on a module array: (i) The cyclic layout which applies to any stabilizer codes, whereas previous results for qubit arrays are limited to CSS codes. (ii) The sparse cyclic layout, specific to bivariate bicycle (BB) codes. For the BB code, using the sparse cyclic layout we obtain a quantum…
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Taxonomy
TopicsQuantum Computing Algorithms and Architecture · Quantum Information and Cryptography · Quantum-Dot Cellular Automata
