4.6 Article

Demonstration of a quantum advantage by a joint detection receiver for optical communication using quantum belief propagation on a trapped-ion device

期刊

PHYSICAL REVIEW A
卷 106, 期 3, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevA.106.032613

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资金

  1. Air Force STTR [FA8750-20-P-1704, FA8750-20-P-1721]
  2. National Science Foundation (NSF) project CIF: Medium: Iterative Quantum LDPC-Decoders [1855879]
  3. Office of Naval Research (ONR) MURI project on Optical Computing [N00014-14-1-0505]
  4. NSF [2204985]
  5. Direct For Computer & Info Scie & Enginr
  6. Division of Computing and Communication Foundations [1855879] Funding Source: National Science Foundation

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This study presents an experimental realization of a quantum joint detection receiver for binary phase shift keying modulated code words. The experiment surpasses the quantum limit on the minimum average decoding error probability and provides a framework that bridges photonic and trapped-ion quantum information science. It opens new avenues for hybrid realizations of quantum-enhanced receivers with applications in astronomy and emerging space-based platforms.
Demonstrations of quantum advantage have largely focused on computational speedups and on quantum simulation of many-body physics, limited by fidelity and the capability of current devices. Discriminating laser-pulse-modulated classical-communication code words at the minimum allowable probability of error using universal-quantum processing presents a promising parallel direction, one that is of both fundamental importance in quantum state discrimination and technological relevance in deep-space laser communications. Here we present an experimental realization of a quantum joint detection receiver for binary phase shift keying modulated code words of a 3-bit linear tree code using a recently proposed quantum algorithm: belief propagation with quantum messages. The receiver, translated to a quantum circuit, was experimentally implemented on a trapped-ion device-the recently released Honeywell LT-1.0 system using 171Yb+ ions, which possesses all-to-all connectivity and midcircuit measurement capabilities that are essential to this demonstration. We conclusively realize a previously postulated but hitherto not demonstrated joint quantum detection scheme and provide an experimental framework that surpasses the quantum limit on the minimum average decoding error probability associated with pulse-by-pulse detection in the low-mean-photon-number limit. The full joint detection scheme bridges across photonic and trapped-ion-based quantum information science, mapping the photonic coherent states of the modulation alphabet onto inner product-preserving states of single-ion qubits. Looking ahead, our work opens new avenues in hybrid realizations of quantum-enhanced receivers with applications in astronomy and emerging space-based platforms.

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