Stammdaten

Titel: SARENA: SFC-Enabled Architecture for Adaptive Video Streaming Applications
Untertitel:
Kurzfassung:

5G and 6G networks are expected to support various novel emerging adaptive video streaming services (e.g., live, VoD, immersive media, and online gaming) with versatile Quality of Experience (QoE) requirements such as high bitrate, low latency, and sufficient reliability. It is widely agreed that these requirements can be satisfied by adopting emerging networking paradigms like Software-Defined Networking (SDN), Network Function Virtualization (NFV), and edge computing. Previous studies have leveraged these paradigms to present network-assisted video streaming frameworks, but mostly in isolation without devising chains of Virtualized Network Functions (VNFs) that consider the QoE requirements of various types of Multime-dia Services (MS). To bridge the aforementioned gaps, we first introduce a set of multimedia VNFs at the edge of an SDN-enabled network, form diverse Service Function Chains (SFCs) based on the QoE requirements of different MS services. We then propose SARENA, an _S_FC-enabled ArchitectuRe for adaptive VidEo StreamiNg Applications. Next, we formulate the problem as a central scheduling optimization model executed at the SDN controller. We also present a lightweight heuristic solution consisting of two phases that run on the SDN controller and edge servers to alleviate the time complexity of the optimization model in large-scale scenarios. Finally, we design a large-scale cloud-based testbed including 250 HTTP Adaptive Streaming (HAS) players requesting two popular MS applications (i.e., live and VoD), conduct various experiments, and compare its effectiveness with baseline systems. Experimental results illustrate that SARENA outperforms baseline schemes in terms of users' QoE by at least 39.6%, latency by 29.3%, and network utilization by 30% in both MS services.

Schlagworte: Network-Assisted Video Streaming, Dynamic Adaptive Streaming over HTTP (DASH), HTTP Adaptive Streaming (HAS), Service Function Chaining (SFC), Software-Defined Networking (SDN), Network Function Virtualization (NVF), Edge Computing
Publikationstyp: Beitrag in Proceedings (Autorenschaft)
Erscheinungsdatum: 28.05.2023 (Print)
Erschienen in: ICC 2023 Proceedings of the IEEE International Conference on Communications
ICC 2023 Proceedings of the IEEE International Conference on Communications
zur Publikation
 ( IEEE Xplore Digital Library; )
Titel der Serie: -
Bandnummer: -
Erstveröffentlichung: Ja
Version: -
Seite: S. 864 - 870

Versionen

Keine Version vorhanden
Erscheinungsdatum: 28.05.2023
ISBN:
  • 978-1-5386-7462-8
ISSN: 1938-1883
Homepage: https://ieeexplore.ieee.org/document/10279262
Erscheinungsdatum: 23.10.2023
ISBN (e-book): -
eISSN: -
DOI: http://dx.doi.org/10.1109/icc45041.2023.10279262
Homepage: https://ieeexplore.ieee.org/document/10279262
Open Access
  • Online verfügbar (nicht Open Access)

Zuordnung

Organisation Adresse
Fakultät für Technische Wissenschaften
 
Institut für Informationstechnologie
Universitaetsstr. 65-67
9020 Klagenfurt am Wörthersee
Österreich
   martina.steinbacher@aau.at
http://itec.aau.at/
zur Organisation
Universitaetsstr. 65-67
AT - 9020  Klagenfurt am Wörthersee

Kategorisierung

Sachgebiete
  • 1020 - Informatik
Forschungscluster Kein Forschungscluster ausgewählt
Peer Reviewed
  • Ja
Publikationsfokus
  • Science to Science (Qualitätsindikator: II)
Klassifikationsraster der zugeordneten Organisationseinheiten:
Arbeitsgruppen
  • Verteilte Systeme

Kooperationen

Organisation Adresse
Concordia University
Kanada
CA  
University of Surrey
GU2 7XH Guildford
Großbrit. u. Nordirland
GB - GU2 7XH  Guildford

Beiträge der Publikation

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