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Statistical QoS Provisioning Architecture for 6G Satellite-Terrestrial Integrated NetworksOA

中文摘要

The emergence of massive ultra-reliable and low latency communications (mURLLC) as a category of age/time/reliability-sensitive service over 6G wireless networks has received considerable research attention, which has presented unprecedented challenges. As one of the key enablers for 6G,satellite-terrestrial integrated networks (STIN) have been developed to offer more expansive connectivity and comprehensive 3D coverage in space-aerial-terrestrial domains for supporting 6G mission-critical mURLLC applications while fulfilling diverse and rigorous quality of service (QoS) requirements. In the context of these mURLLC-driven satellite services, data freshness assumes paramount importance, as outdated data may engender unpredictable or catastrophic outcomes.To effectively measure data freshness in satellite-terrestrial integrated communications,age of information(AoI)has recently surfaced as a new dimension of QoS metric to support time-sensitive applications. It is crucial to design new analytical models that ensure stringent and diverse QoS metrics bounded by different key parameters,including AoI,delay,and reliability,over 6G satellite-terrestrial integrated networks. However,due to the complicated and dynamic nature of satellite-terrestrial integrated network environments, the research on efficiently defining new statistical QoS provisioning schemes while taking into account varying degrees of freedom has still been in their infancy. To remedy these deficiencies, in this paper we develop statistical QoS provisioning schemes over 6G satellite-terrestrial integrated networks in the finite blocklength regime. Particularly, we firstly introduce and review key technologies for supporting mURLLC.Secondly,we formulate a number of novel fundamental statistical-QoS metrics in the finite blocklength regime.Finally,we conduct a set of simulations to validate and evaluate our developed statistical QoS provisioning schemes over satellite-terrestrial integrated networks.

Jingqing Wang;Wenchi Cheng;Wei Zhang;Hui Liang;

School of Telecommunications Engineering,Xidian University,Xi’an 710071,ChinaSchool of Electrical Engineering and Telecommunications,the University of New South Wales,Sydney,AustraliaSchool of Electrical Engineering and Intelligentization,Dongguan University of Technology,Dongguan 523808,China Peng Cheng Laboratory,Shenzhen 518055,China.

电子信息工程

statistical QoS provisioningmURLLCpeak AoIsatellite-terrestrial integrated networksQoS exponentshybrid automatic repeat requestfinite blocklength coding

《Journal of Communications and Information Networks》 2024 (001)

P.34-42 / 9

supported by the Key Area Research and Development Program of Guangdong Province under Grant 2020B0101110003;in part by the National Natural Science Foundation of China under Grant 62341132;the National Key Research and Development Program of China under Grant 2021YFC3002102;the Key Research and Development Plan of Shaanxi Province under Grant 2022ZDLGY05-09;the Natural Science Basic Research Program of Shaanxi under Grant 2024JC-YBQN-0642.

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