Delay-Aware Satellite-Terrestrial Backhauling for Heterogeneous Small Cell Networks

This paper investigates a satellite-terrestrial backhaul framework to enhance efficient data offloading for heterogeneous terminals, including delay-sensitive and delay-tolerant users. In the considered architecture, ground terminals in satellite-terrestrial small cells can access different services...

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Main Authors: Zhe Ji, Suzhi Cao, Sheng Wu, Wenbo Wang
Format: Article
Language:English
Published: IEEE 2020-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9119103/
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spelling doaj-c176478e2ffb45a19bebb05453e207802021-03-30T02:36:08ZengIEEEIEEE Access2169-35362020-01-01811219011220210.1109/ACCESS.2020.30029279119103Delay-Aware Satellite-Terrestrial Backhauling for Heterogeneous Small Cell NetworksZhe Ji0Suzhi Cao1Sheng Wu2https://orcid.org/0000-0002-9947-9968Wenbo Wang3https://orcid.org/0000-0002-0911-3189School of Information and Communication Engineering, Beijing University of Posts and Telecommunications, Beijing, ChinaTechnology and Engineering Center for Space Utilization, Chinese Academy of Sciences, Beijing, ChinaSchool of Information and Communication Engineering, Beijing University of Posts and Telecommunications, Beijing, ChinaSchool of Information and Communication Engineering, Beijing University of Posts and Telecommunications, Beijing, ChinaThis paper investigates a satellite-terrestrial backhaul framework to enhance efficient data offloading for heterogeneous terminals, including delay-sensitive and delay-tolerant users. In the considered architecture, ground terminals in satellite-terrestrial small cells can access different services via the satellite-terrestrial station (STS) in each cell. The satellite offloads the requested services to corresponding STSs, and each STS provides services to terrestrial terminals via an OFDM-based downlink system. We aim to maximize the sum throughput of all small cells while integrating joint satellite backhaul power allocation and STS downlink resource allocation. The problem is firstly decomposed into two types of subproblems by decoupling the optimization of satellite backhaul capacity and downlink capacity in small cells. Then, to satisfy users' delay requirements, the downlink STS throughput is maximized over multiple slots, and we propose a two-step algorithm to schedule users during these slots. By taking advantage of a delay-violation parameter, the algorithm iteratively approaches the optimal power and subchannel solution, while guaranteeing the delay requirements. Moreover, to reduce the computational complexity, we propose a greedy-based sub-optimal scheduling algorithm where delay requirements are guaranteed by users' self-search for favorable resources, aiming at sacrificing the minimum throughput in exchange for the delay performance. Simulation results show our algorithms effectively improve the throughput performance while ensuring the delay constraints, maintaining a well-performed balance between throughput and delay performance.https://ieeexplore.ieee.org/document/9119103/Satellite-terrestrial backhaulingheterogenous servicessmall cellsdelay awarenesslow-complexitypower allocation
collection DOAJ
language English
format Article
sources DOAJ
author Zhe Ji
Suzhi Cao
Sheng Wu
Wenbo Wang
spellingShingle Zhe Ji
Suzhi Cao
Sheng Wu
Wenbo Wang
Delay-Aware Satellite-Terrestrial Backhauling for Heterogeneous Small Cell Networks
IEEE Access
Satellite-terrestrial backhauling
heterogenous services
small cells
delay awareness
low-complexity
power allocation
author_facet Zhe Ji
Suzhi Cao
Sheng Wu
Wenbo Wang
author_sort Zhe Ji
title Delay-Aware Satellite-Terrestrial Backhauling for Heterogeneous Small Cell Networks
title_short Delay-Aware Satellite-Terrestrial Backhauling for Heterogeneous Small Cell Networks
title_full Delay-Aware Satellite-Terrestrial Backhauling for Heterogeneous Small Cell Networks
title_fullStr Delay-Aware Satellite-Terrestrial Backhauling for Heterogeneous Small Cell Networks
title_full_unstemmed Delay-Aware Satellite-Terrestrial Backhauling for Heterogeneous Small Cell Networks
title_sort delay-aware satellite-terrestrial backhauling for heterogeneous small cell networks
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2020-01-01
description This paper investigates a satellite-terrestrial backhaul framework to enhance efficient data offloading for heterogeneous terminals, including delay-sensitive and delay-tolerant users. In the considered architecture, ground terminals in satellite-terrestrial small cells can access different services via the satellite-terrestrial station (STS) in each cell. The satellite offloads the requested services to corresponding STSs, and each STS provides services to terrestrial terminals via an OFDM-based downlink system. We aim to maximize the sum throughput of all small cells while integrating joint satellite backhaul power allocation and STS downlink resource allocation. The problem is firstly decomposed into two types of subproblems by decoupling the optimization of satellite backhaul capacity and downlink capacity in small cells. Then, to satisfy users' delay requirements, the downlink STS throughput is maximized over multiple slots, and we propose a two-step algorithm to schedule users during these slots. By taking advantage of a delay-violation parameter, the algorithm iteratively approaches the optimal power and subchannel solution, while guaranteeing the delay requirements. Moreover, to reduce the computational complexity, we propose a greedy-based sub-optimal scheduling algorithm where delay requirements are guaranteed by users' self-search for favorable resources, aiming at sacrificing the minimum throughput in exchange for the delay performance. Simulation results show our algorithms effectively improve the throughput performance while ensuring the delay constraints, maintaining a well-performed balance between throughput and delay performance.
topic Satellite-terrestrial backhauling
heterogenous services
small cells
delay awareness
low-complexity
power allocation
url https://ieeexplore.ieee.org/document/9119103/
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AT suzhicao delayawaresatelliteterrestrialbackhaulingforheterogeneoussmallcellnetworks
AT shengwu delayawaresatelliteterrestrialbackhaulingforheterogeneoussmallcellnetworks
AT wenbowang delayawaresatelliteterrestrialbackhaulingforheterogeneoussmallcellnetworks
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