TY - JOUR
T1 - High-Fidelity Coherent-One-Way QKD Simulation Framework for 6G Networks
T2 - Bridging Theory and Reality
AU - Brazaola-Vicario, Aitor
AU - Kouvakis, Vasileios
AU - Trevlakis, Stylianos E.
AU - Ruiz, Alejandra
AU - Boulogeorgos, Alexandros Apostolos A.
AU - Tsiftsis, Theodoros A.
AU - Niyato, Dusit
N1 - Publisher Copyright:
© 2004-2012 IEEE.
PY - 2025
Y1 - 2025
N2 - Quantum key distribution (QKD) has emerged as a promising solution for guaranteeing information-theoretic security. Inspired by this, a great amount of research effort has been recently put on designing and testing QKD systems as well as articulating preliminary application scenarios. However, due to the considerable high-cost of QKD equipment, a lack of QKD communication system design tools, wide deployment of such systems and networks is challenging. Motivated by this, this paper introduces a QKD communication system design tool. First we articulate key operation elements of the QKD, and explain the feasibility and applicability of coherent-one-way (COW) QKD solutions. Next, we focus on documenting the corresponding simulation framework as well as defining the key performance metrics, i.e., quantum bit error rate (QBER), and secrecy key rate. To verify the accuracy of the simulation framework, we design and deploy a real-world QKD setup. We perform extensive experiments for three deployments of diverse transmission distance in the presence or absence of a QKD eavesdropper. The results reveal an acceptable match between simulations and experiments rendering the simulation framework a suitable tool for QKD communication system design.
AB - Quantum key distribution (QKD) has emerged as a promising solution for guaranteeing information-theoretic security. Inspired by this, a great amount of research effort has been recently put on designing and testing QKD systems as well as articulating preliminary application scenarios. However, due to the considerable high-cost of QKD equipment, a lack of QKD communication system design tools, wide deployment of such systems and networks is challenging. Motivated by this, this paper introduces a QKD communication system design tool. First we articulate key operation elements of the QKD, and explain the feasibility and applicability of coherent-one-way (COW) QKD solutions. Next, we focus on documenting the corresponding simulation framework as well as defining the key performance metrics, i.e., quantum bit error rate (QBER), and secrecy key rate. To verify the accuracy of the simulation framework, we design and deploy a real-world QKD setup. We perform extensive experiments for three deployments of diverse transmission distance in the presence or absence of a QKD eavesdropper. The results reveal an acceptable match between simulations and experiments rendering the simulation framework a suitable tool for QKD communication system design.
KW - Coherent-one-way (COW)
KW - experimental validation
KW - quantum bit error rate (QBER)
KW - quantum key distribution (QKD)
KW - secrecy key rate
KW - simulation framework
UR - https://www.scopus.com/pages/publications/105019105613
U2 - 10.1109/TNSM.2025.3619551
DO - 10.1109/TNSM.2025.3619551
M3 - Article
AN - SCOPUS:105019105613
SN - 1932-4537
JO - IEEE Transactions on Network and Service Management
JF - IEEE Transactions on Network and Service Management
ER -