Graph Theory Based Cooperative Transmission for Physical-Layer Security in 5G Large-Scale Wireless Relay Networks

In this paper, multi-hop cooperative techniques are adopted to improve the physical-layer security in 5G large-scale decode-and-forward relay networks with massive relays and eavesdroppers. The utilization of graph theory is investigated to relieve the burden of massive nodes and ease the cooperativ...

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Main Authors: Chensi Zhang, Jianhua Ge, Zeyu Xia, Haoyu Du
Format: Article
Language:English
Published: IEEE 2017-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/8064631/
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spelling doaj-eb819030cd544d3f82ca1aa9d26c637a2021-03-29T20:20:34ZengIEEEIEEE Access2169-35362017-01-015216402164910.1109/ACCESS.2017.27618828064631Graph Theory Based Cooperative Transmission for Physical-Layer Security in 5G Large-Scale Wireless Relay NetworksChensi Zhang0https://orcid.org/0000-0002-8427-5671Jianhua Ge1Zeyu Xia2Haoyu Du3State Key Laboratory of Integrated Service Networks, Xidian University, Xi’an, ChinaState Key Laboratory of Integrated Service Networks, Xidian University, Xi’an, ChinaState Key Laboratory of Integrated Service Networks, Xidian University, Xi’an, ChinaState Key Laboratory of Integrated Service Networks, Xidian University, Xi’an, ChinaIn this paper, multi-hop cooperative techniques are adopted to improve the physical-layer security in 5G large-scale decode-and-forward relay networks with massive relays and eavesdroppers. The utilization of graph theory is investigated to relieve the burden of massive nodes and ease the cooperative anti-eavesdropping transmission designs. In particular, a secrecy weighted graph is first established according to the network topology. Three scenarios associated with different levels of wiretapping capability are taken into account. Accordingly, secrecy measurements are converted into the weight of each edge and three efficient cooperative anti-eavesdropping strategies are then proposed for physical-layer security enhancement based on the shortest path algorithm, respectively. It is verified that the proposed cooperative anti-eavesdropping strategies have the property of low complexity and are more attractive for large-scale networks. Simulation results highlight the efficiency and effectiveness of our designs. It has been shown that two-hop transmission does not always promise performance gain in terms of secrecy gain. On the contrary, the proposed strategies are able to provide considerable improvement for different cases, emphasizing the necessity of adopting multi-hop cooperative anti-eavesdropping techniques to improve the physical-layer security.https://ieeexplore.ieee.org/document/8064631/Physical-layer securitygraph theoryrelaycooperative anti-eavesdropping
collection DOAJ
language English
format Article
sources DOAJ
author Chensi Zhang
Jianhua Ge
Zeyu Xia
Haoyu Du
spellingShingle Chensi Zhang
Jianhua Ge
Zeyu Xia
Haoyu Du
Graph Theory Based Cooperative Transmission for Physical-Layer Security in 5G Large-Scale Wireless Relay Networks
IEEE Access
Physical-layer security
graph theory
relay
cooperative anti-eavesdropping
author_facet Chensi Zhang
Jianhua Ge
Zeyu Xia
Haoyu Du
author_sort Chensi Zhang
title Graph Theory Based Cooperative Transmission for Physical-Layer Security in 5G Large-Scale Wireless Relay Networks
title_short Graph Theory Based Cooperative Transmission for Physical-Layer Security in 5G Large-Scale Wireless Relay Networks
title_full Graph Theory Based Cooperative Transmission for Physical-Layer Security in 5G Large-Scale Wireless Relay Networks
title_fullStr Graph Theory Based Cooperative Transmission for Physical-Layer Security in 5G Large-Scale Wireless Relay Networks
title_full_unstemmed Graph Theory Based Cooperative Transmission for Physical-Layer Security in 5G Large-Scale Wireless Relay Networks
title_sort graph theory based cooperative transmission for physical-layer security in 5g large-scale wireless relay networks
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2017-01-01
description In this paper, multi-hop cooperative techniques are adopted to improve the physical-layer security in 5G large-scale decode-and-forward relay networks with massive relays and eavesdroppers. The utilization of graph theory is investigated to relieve the burden of massive nodes and ease the cooperative anti-eavesdropping transmission designs. In particular, a secrecy weighted graph is first established according to the network topology. Three scenarios associated with different levels of wiretapping capability are taken into account. Accordingly, secrecy measurements are converted into the weight of each edge and three efficient cooperative anti-eavesdropping strategies are then proposed for physical-layer security enhancement based on the shortest path algorithm, respectively. It is verified that the proposed cooperative anti-eavesdropping strategies have the property of low complexity and are more attractive for large-scale networks. Simulation results highlight the efficiency and effectiveness of our designs. It has been shown that two-hop transmission does not always promise performance gain in terms of secrecy gain. On the contrary, the proposed strategies are able to provide considerable improvement for different cases, emphasizing the necessity of adopting multi-hop cooperative anti-eavesdropping techniques to improve the physical-layer security.
topic Physical-layer security
graph theory
relay
cooperative anti-eavesdropping
url https://ieeexplore.ieee.org/document/8064631/
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