Delays; Dynamic scheduling; Fairness; Heuristic algorithms; Network Function Virtualization (NFV); Processor scheduling; Quality of service; Satellite Edge Computing; Satellites; Software Defined Networking (SDN); Topology; Virtual Network Function (VNF); VNF Scheduling; Delay; Edge computing; Heuristics algorithm; Network function virtualization; Network functions; Quality-of-service; Satellite edge computing; Software defined networking; Software-defined networkings; Virtual network function; Virtual network function scheduling; Virtual networks; Virtualizations; Computer Networks and Communications; Electrical and Electronic Engineering
Abstract :
[en] Satellite Edge Computing (SEC) is seen as a promising solution for deploying network functions in orbit to provide ubiquitous services with low latency and bandwidth. Software Defined Networks (SDN) and Network Function Virtualization (NFV) enable SEC to manage and deploy services more flexibly. In this paper, we study a dynamic and topology-aware VNF mapping and scheduling strategy within an SDN/NFV-enabled SEC infrastructure. Our focus is on meeting the stringent requirements of mission-critical (MC) applications, recognizing their significance in both satellite-to-satellite and edge-to-satellite communications while ensuring service delay margin fairness across various time-sensitive service requests. We formulate the VNF mapping and scheduling problem as an Integer Nonlinear Programming problem (), with the objective of minimax fairness among specified requests while considering dynamic satellite network topology, traffic, and resource constraints. We then propose two algorithms for solving the problem: Fairness-Aware Greedy Algorithm for Dynamic VNF Mapping and Scheduling () and Fairness-Aware Simulated Annealing-Based Algorithm for Dynamic VNF Mapping and Scheduling () which are suitable for low and high service arrival rates, respectively. Our extensive simulations demonstrate that both and approaches are very close to the optimization-based solution and outperform the benchmark solution in terms of service acceptance rates.
Research center :
Interdisciplinary Centre for Security, Reliability and Trust (SnT) > SIGCOM - Signal Processing & Communications
Precision for document type :
Review article
Disciplines :
Electrical & electronics engineering
Author, co-author :
ABREHA, Haftay ; University of Luxembourg > Interdisciplinary Centre for Security, Reliability and Trust (SNT) > SigCom
CHOUGRANI, Houcine ; University of Luxembourg > Interdisciplinary Centre for Security, Reliability and Trust > SigCom > Team Symeon CHATZINOTAS
MAITY, Ilora ; University of Luxembourg > Interdisciplinary Centre for Security, Reliability and Trust (SNT) > SigCom
DRIF, Youssouf ; University of Luxembourg > Interdisciplinary Centre for Security, Reliability and Trust (SNT) > SigCom
Politis, Christos
CHATZINOTAS, Symeon ; University of Luxembourg > Interdisciplinary Centre for Security, Reliability and Trust (SNT) > SigCom
External co-authors :
no
Language :
English
Title :
Fairness-Aware VNF Mapping and Scheduling in Satellite Edge Networks for Mission-Critical Applications
Publication date :
21 December 2024
Journal title :
IEEE Transactions on Network and Service Management
ISSN :
1932-4537
Publisher :
Institute of Electrical and Electronics Engineers Inc.
Satellite-assisted edge/fog processing for latency reduction and enhanced QoS in mission critical IoT applications
Funders :
FNR - Luxembourg National Research Fund
Funding number :
IPBG19/14016225
Funding text :
An earlier version of this paper was published at IEEE ICC 2023 [1]. This work was supported by the Luxembourg National Research Fund (FNR) \u2013 INSTRUCT Project, NT-03 Haftay Gebreslasie Abreha, Houcine Chougrani, Ilora Maity, Youssouf DRIF, and Symeon Chatzinotas are with the Interdisciplinary Center for Security, Reliability and Trust (SnT), University of Luxembourg, 1855 Luxembourg City, Luxembourg (e-mail: haftay.abreha@uni.lu; houcine.chougrani@uni.lu; ilora.maity@uni.lu; youssouf.drif@uni.lu; symeon.chatzinotas@uni.lu).