Quantum Advantage via Qubit Belief Propagation
Conference Paper
Quantum technologies are maturing by the day and their near-term applications are now of great interest. Deep-space optical communication involves transmission over the pure-state classical-quantum channel. For optimal detection, a joint measurement on all output qubits is required in general. Since this is hard to realize, current (sub-optimal) schemes perform symbol-by-symbol detection followed by classical post-processing. In this paper we focus on a recently proposed belief propagation algorithm by Renes that passes qubit messages on the factor graph of a classical error-correcting code. More importantly, it only involves single-qubit Pauli measurements during the process. For an example 5-bit code, we analyze the involved density matrices and calculate the error probabilities on this channel. Then we numerically compute the optimal joint detection limit using the Yuen-Kennedy-Lax conditions and demonstrate that the calculated error probabilities for this algorithm appear to achieve this limit. This represents a first step towards achieveing quantum communication advantage. We verify our analysis using Monte-Carlo simulations in practice.
Full Text
Duke Authors
Cited Authors
- Rengaswamy, N; Seshadreesan, KP; Guha, S; Pfister, HD
Published Date
- June 1, 2020
Published In
Volume / Issue
- 2020-June /
Start / End Page
- 1824 - 1829
International Standard Serial Number (ISSN)
- 2157-8095
International Standard Book Number 13 (ISBN-13)
- 9781728164328
Digital Object Identifier (DOI)
- 10.1109/ISIT44484.2020.9174494
Citation Source
- Scopus