On the QKD Integration in Converged Fiber/Wireless Topologies for Secured, Low-Latency 5G/B5G Fronthaul

A research contribution focusing on the Quantum Key Distribution (QKD)-enabled solutions assisting in the security framework of an optical 5G fronthaul segment is presented. We thoroughly investigate the integration of a BB84-QKD link, operating at telecom band, delivering quantum keys for the Advan...

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Main Authors: Dimitris Zavitsanos, Argiris Ntanos, Giannis Giannoulis, Hercules Avramopoulos
Format: Article
Language:English
Published: MDPI AG 2020-07-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/10/15/5193
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spelling doaj-b99f91344c3145c3989fd35636faed4f2020-11-25T01:19:55ZengMDPI AGApplied Sciences2076-34172020-07-01105193519310.3390/app10155193On the QKD Integration in Converged Fiber/Wireless Topologies for Secured, Low-Latency 5G/B5G FronthaulDimitris Zavitsanos0Argiris Ntanos1Giannis Giannoulis2Hercules Avramopoulos3School of Electrical and Computer Engineering, National Technical University of Athens, 9 Iroon Polytechniou Str., 15780 Athens, GreeceSchool of Electrical and Computer Engineering, National Technical University of Athens, 9 Iroon Polytechniou Str., 15780 Athens, GreeceSchool of Electrical and Computer Engineering, National Technical University of Athens, 9 Iroon Polytechniou Str., 15780 Athens, GreeceSchool of Electrical and Computer Engineering, National Technical University of Athens, 9 Iroon Polytechniou Str., 15780 Athens, GreeceA research contribution focusing on the Quantum Key Distribution (QKD)-enabled solutions assisting in the security framework of an optical 5G fronthaul segment is presented. We thoroughly investigate the integration of a BB84-QKD link, operating at telecom band, delivering quantum keys for the Advanced Encryption Standard (AES)-256 encryption engines of a packetized fronthaul layer interconnecting multiple 5G terminal nodes. Secure Key Rate calculations are studied for both dedicated and shared fiber configurations to identify the attack surface of AES-encrypted data links in each deployment scenario. We also propose a converged fiber-wireless scenario, exploiting a mesh networking extension operated by mmWave wireless links. In addition to the quantum layer performance, emphasis is placed on the strict requirements of 5G-oriented optical edge segments, such as the latency and the availability of quantum keys. We find that for the dark fiber case, secret keys can be distilled at fiber lengths much longer than the maximum fiber fronthaul distance corresponding to the round-trip latency barrier, for both P2P and P2MP topologies. On the contrary, the inelastic Raman scattering makes the simultaneous transmission of quantum and classical signals much more challenging. To counteract the contamination of noise photons, a resilient classical/QKD coexistence scheme is adopted. Motivated by the recent advancements in quantum technology roadmap, our analysis aims to introduce the QKD blocks as a pillar of the quantum-safe security framework of the 5G/B5G-oriented fronthaul infrastructure.https://www.mdpi.com/2076-3417/10/15/5193quantum key distribution (QKD)phase-coding BB84secure key rates (SKRs)advanced encryption standard (AES)5G/B5G packetized fronthaullow-latency
collection DOAJ
language English
format Article
sources DOAJ
author Dimitris Zavitsanos
Argiris Ntanos
Giannis Giannoulis
Hercules Avramopoulos
spellingShingle Dimitris Zavitsanos
Argiris Ntanos
Giannis Giannoulis
Hercules Avramopoulos
On the QKD Integration in Converged Fiber/Wireless Topologies for Secured, Low-Latency 5G/B5G Fronthaul
Applied Sciences
quantum key distribution (QKD)
phase-coding BB84
secure key rates (SKRs)
advanced encryption standard (AES)
5G/B5G packetized fronthaul
low-latency
author_facet Dimitris Zavitsanos
Argiris Ntanos
Giannis Giannoulis
Hercules Avramopoulos
author_sort Dimitris Zavitsanos
title On the QKD Integration in Converged Fiber/Wireless Topologies for Secured, Low-Latency 5G/B5G Fronthaul
title_short On the QKD Integration in Converged Fiber/Wireless Topologies for Secured, Low-Latency 5G/B5G Fronthaul
title_full On the QKD Integration in Converged Fiber/Wireless Topologies for Secured, Low-Latency 5G/B5G Fronthaul
title_fullStr On the QKD Integration in Converged Fiber/Wireless Topologies for Secured, Low-Latency 5G/B5G Fronthaul
title_full_unstemmed On the QKD Integration in Converged Fiber/Wireless Topologies for Secured, Low-Latency 5G/B5G Fronthaul
title_sort on the qkd integration in converged fiber/wireless topologies for secured, low-latency 5g/b5g fronthaul
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2020-07-01
description A research contribution focusing on the Quantum Key Distribution (QKD)-enabled solutions assisting in the security framework of an optical 5G fronthaul segment is presented. We thoroughly investigate the integration of a BB84-QKD link, operating at telecom band, delivering quantum keys for the Advanced Encryption Standard (AES)-256 encryption engines of a packetized fronthaul layer interconnecting multiple 5G terminal nodes. Secure Key Rate calculations are studied for both dedicated and shared fiber configurations to identify the attack surface of AES-encrypted data links in each deployment scenario. We also propose a converged fiber-wireless scenario, exploiting a mesh networking extension operated by mmWave wireless links. In addition to the quantum layer performance, emphasis is placed on the strict requirements of 5G-oriented optical edge segments, such as the latency and the availability of quantum keys. We find that for the dark fiber case, secret keys can be distilled at fiber lengths much longer than the maximum fiber fronthaul distance corresponding to the round-trip latency barrier, for both P2P and P2MP topologies. On the contrary, the inelastic Raman scattering makes the simultaneous transmission of quantum and classical signals much more challenging. To counteract the contamination of noise photons, a resilient classical/QKD coexistence scheme is adopted. Motivated by the recent advancements in quantum technology roadmap, our analysis aims to introduce the QKD blocks as a pillar of the quantum-safe security framework of the 5G/B5G-oriented fronthaul infrastructure.
topic quantum key distribution (QKD)
phase-coding BB84
secure key rates (SKRs)
advanced encryption standard (AES)
5G/B5G packetized fronthaul
low-latency
url https://www.mdpi.com/2076-3417/10/15/5193
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