Physical-Layer-Security-Oriented Frequency Allocation in Ultra-Dense-Networks Based on Location Informations

In this paper, we investigate location-based frequency allocation schemes in a two-layer ultra-dense network (UDN) with a wideband eavesdropper to efficiently enhance the macro layer security in the whole working bandwidth. The cross-tier interference, treated as evil by traditional wisdom, is emplo...

Full description

Bibliographic Details
Main Authors: Zhongyu Miao, Ying Wang
Format: Article
Language:English
Published: IEEE 2019-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/8751979/
_version_ 1818412637519609856
author Zhongyu Miao
Ying Wang
author_facet Zhongyu Miao
Ying Wang
author_sort Zhongyu Miao
collection DOAJ
description In this paper, we investigate location-based frequency allocation schemes in a two-layer ultra-dense network (UDN) with a wideband eavesdropper to efficiently enhance the macro layer security in the whole working bandwidth. The cross-tier interference, treated as evil by traditional wisdom, is employed to confuse the malicious node as well as to tackle the conflict between the secrecy and traditional performances through the prudent spectrum allocation among the small cells. Three games are designed to progressively give insight into the frequency assignment problems under increasingly strict scenes. With the help of game theoretic stochastic learning approaches and location information, small cell base stations (SBSs) are endowed with the ability to distributedly select the subchannel with no requirement on the eavesdropper's CSI. First, more specifically, we focus on the security problem, aiming to promote the safety transmission of macro users by leveraging a state field, and thus formulate the spectrum selection of SBSs as a state-based potential game, which guarantees a budget-balanced utility design. The existence of a recurrent state equilibrium point is proved, and that it is able to maximize the total safety transmission probability of all subchannels. A step forward, we take the service delay of SBSs into consideration, nowadays, as numerous new services are delay-sensitive. To this end, an exact potential game, in which the equilibrium always exists, is built to help SBSs strike a balance between altruistically helping the macro users and selfishly keeping their own performances. Furthermore, a fully distributed non-cooperative game that requires no exchange among SBSs is put forward. The proposed scheme may work well even when the backhaul is limited or even unavailable since all the SBSs only depend on the observation of their own instantaneous performances. Finally, the numerical results validate the effectiveness of the proposed games on improving the safety transmission probability while guaranteeing a better service within small cells.
first_indexed 2024-12-14T10:50:29Z
format Article
id doaj.art-93a6ccbdc1774ca484f1429bdf43d452
institution Directory Open Access Journal
issn 2169-3536
language English
last_indexed 2024-12-14T10:50:29Z
publishDate 2019-01-01
publisher IEEE
record_format Article
series IEEE Access
spelling doaj.art-93a6ccbdc1774ca484f1429bdf43d4522022-12-21T23:05:16ZengIEEEIEEE Access2169-35362019-01-017901909020510.1109/ACCESS.2019.29258098751979Physical-Layer-Security-Oriented Frequency Allocation in Ultra-Dense-Networks Based on Location InformationsZhongyu Miao0https://orcid.org/0000-0003-1718-3600Ying Wang1https://orcid.org/0000-0002-4494-6389Key Laboratory of Universal Wireless Communications, Ministry of Education, Beijing University of Posts and Telecommunications, Beijing, ChinaKey Laboratory of Universal Wireless Communications, Ministry of Education, Beijing University of Posts and Telecommunications, Beijing, ChinaIn this paper, we investigate location-based frequency allocation schemes in a two-layer ultra-dense network (UDN) with a wideband eavesdropper to efficiently enhance the macro layer security in the whole working bandwidth. The cross-tier interference, treated as evil by traditional wisdom, is employed to confuse the malicious node as well as to tackle the conflict between the secrecy and traditional performances through the prudent spectrum allocation among the small cells. Three games are designed to progressively give insight into the frequency assignment problems under increasingly strict scenes. With the help of game theoretic stochastic learning approaches and location information, small cell base stations (SBSs) are endowed with the ability to distributedly select the subchannel with no requirement on the eavesdropper's CSI. First, more specifically, we focus on the security problem, aiming to promote the safety transmission of macro users by leveraging a state field, and thus formulate the spectrum selection of SBSs as a state-based potential game, which guarantees a budget-balanced utility design. The existence of a recurrent state equilibrium point is proved, and that it is able to maximize the total safety transmission probability of all subchannels. A step forward, we take the service delay of SBSs into consideration, nowadays, as numerous new services are delay-sensitive. To this end, an exact potential game, in which the equilibrium always exists, is built to help SBSs strike a balance between altruistically helping the macro users and selfishly keeping their own performances. Furthermore, a fully distributed non-cooperative game that requires no exchange among SBSs is put forward. The proposed scheme may work well even when the backhaul is limited or even unavailable since all the SBSs only depend on the observation of their own instantaneous performances. Finally, the numerical results validate the effectiveness of the proposed games on improving the safety transmission probability while guaranteeing a better service within small cells.https://ieeexplore.ieee.org/document/8751979/Ultra-dense networksphysical layer securitydelaystate-based gamereinforcement learning
spellingShingle Zhongyu Miao
Ying Wang
Physical-Layer-Security-Oriented Frequency Allocation in Ultra-Dense-Networks Based on Location Informations
IEEE Access
Ultra-dense networks
physical layer security
delay
state-based game
reinforcement learning
title Physical-Layer-Security-Oriented Frequency Allocation in Ultra-Dense-Networks Based on Location Informations
title_full Physical-Layer-Security-Oriented Frequency Allocation in Ultra-Dense-Networks Based on Location Informations
title_fullStr Physical-Layer-Security-Oriented Frequency Allocation in Ultra-Dense-Networks Based on Location Informations
title_full_unstemmed Physical-Layer-Security-Oriented Frequency Allocation in Ultra-Dense-Networks Based on Location Informations
title_short Physical-Layer-Security-Oriented Frequency Allocation in Ultra-Dense-Networks Based on Location Informations
title_sort physical layer security oriented frequency allocation in ultra dense networks based on location informations
topic Ultra-dense networks
physical layer security
delay
state-based game
reinforcement learning
url https://ieeexplore.ieee.org/document/8751979/
work_keys_str_mv AT zhongyumiao physicallayersecurityorientedfrequencyallocationinultradensenetworksbasedonlocationinformations
AT yingwang physicallayersecurityorientedfrequencyallocationinultradensenetworksbasedonlocationinformations