Novel Reconciliation Protocol Based on Spinal Code for Continuous-variable Quantum Key Distribution
Xuan Wen, Qiong Li, Haokun Mao, Yi Luo, Bingze Yan

TL;DR
This paper introduces a novel rateless reconciliation protocol based on spinal codes for continuous-variable quantum key distribution, achieving high efficiency, adaptability, and ease of implementation across a wide SNR range.
Contribution
The paper proposes a new spinal code-based rateless reconciliation protocol that simplifies implementation and enhances adaptability for CV-QKD systems.
Findings
Reconciliation efficiency around 95% across SNRs (0, 0.5).
Efficiency exceeds 96.5% at SNR <= 0.03.
Protocol is suitable for high-speed hardware implementation.
Abstract
Reconciliation is a crucial procedure in post-processing of continuous variable quantum key distribution (CV-QKD) system, which is used to make two distant legitimate parties share identical corrected keys. The adaptive reconciliation is necessary and important for practical systems to cope with the variable channel. Many researchers adopt the punctured LDPC codes to implement adaptive reconciliation. In this paper, a novel rateless reconciliation protocol based on spinal code is proposed, which can achieve a high-efficiency and adaptive reconciliation in a larger range of SNRs. Due to the short codes length and simple tructure, our protocol is easy to implement without the complex codes designs of fixed rate codes, e.g., LDPC codes. Meanwhile, the structure of our protocol is highly parallel, which is suitable for hardware implementation, thus it also has the potential of high-speed…
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Taxonomy
TopicsQuantum Information and Cryptography · Quantum Computing Algorithms and Architecture · Quantum-Dot Cellular Automata
