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    Information reconciliation for phase shift keying discrete modulation continuous-variable quantum key distribution

    Zhenguo Lu1,2, Weilin Liu1,2, Yu Zhang1,2, Zengliang Bai3, and Yongmin Li1,2,4,*

    • *Contact author: yongmin@sxu.edu.cn

    Phys. Rev. A 112, 062613 – Published 9 December, 2025

    DOI: https://doi.org/10.1103/kgpx-krj7

    Abstract

    Discrete modulation continuous-variable quantum key distribution protocols are compatible with modern coherent optical communication technologies and devices. As a key part of the protocol, the performance of information reconciliation directly affects the secret key rate and transmission distance. Herein, we propose a reconciliation scheme for hard-decision strategy–based discrete modulation continuous-variable quantum key distribution protocol with eight-phase shift keying by combining slice reconciliation and raptor-like low-density parity-check (RL-LDPC) codes. We design the optimal binary sequence encoding of the discretized values of the receiver and sender, which reduce both the number of levels of error correction and the reconciliation complexity. In order to reduce the frame error rate, both the degree distribution and the size of the base matrix of RL-LDPC code is optimized. Simulation results show that the proposed scheme can reach reconciliation efficiencies of 92.05% and 93% with frame error rates of 6.2% and 11.7% at the signal-to-noise ratio of 0.15, respectively. At these points, the key rates can reach 0.0193 and 0.0195 bits/pulse, respectively.

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