Constant-space-overhead fault-tolerant quantum input/output and communication
Paula Belzig, Hayata Yamasaki

TL;DR
This paper introduces a fault-tolerant quantum communication method using concatenated quantum Hamming codes, achieving constant space overhead and higher rates by exploiting limited noise correlations.
Contribution
It presents a novel fault-tolerant quantum input/output scheme with constant space overhead based on quantum Hamming codes, improving achievable communication rates.
Findings
Higher fault-tolerant communication rates achieved
Constant space overhead with concatenated quantum Hamming codes
Simpler fault-tolerant circuit implementation
Abstract
Fault-tolerant capacities quantify the ability of a quantum channel to reliably transmit information when every component of the encoding and decoding procedure is noisy. Earlier work analyzed achievable communication rates under such noise using fault-tolerant implementations based on concatenated codes with a single logical qubit. In this work, we develop an alternative approach using concatenations of quantum Hamming codes, which offer constant space overhead by encoding many logical qubits simultaneously. We introduce modular techniques for implementing fault-tolerant circuits with quantum input/output interfaces using the concatenated quantum Hamming code. These tools enable an analysis of fault-tolerant entanglement-assisted communication that is not only simpler, but also yields substantially higher achievable communication rates than previous methods, owing to the limited noise…
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Taxonomy
TopicsQuantum Computing Algorithms and Architecture · Quantum Information and Cryptography · Quantum-Dot Cellular Automata
