Queueing Theoretic Models for Multiuser MISO Content-Centric Networks with SDMA, NOMA, OMA and Rate-Splitting Downlink
Ramkumar Raghu, Mahadesh Panju, Vinod Sharma

TL;DR
This paper develops queueing theoretic models for MU-MISO content-centric networks, analyzing how queueing, beamforming, and user dynamics impact delay, and proposes improvements to existing multicast queue models for better fairness and performance.
Contribution
It introduces simple, adaptable queueing models for MU-MISO CCNs, extending the Simple Multicast Queue to MISO systems and proposing Dual SMQ for improved fairness.
Findings
SMQ can be directly applied to MU-MISO systems with superior stability.
MMF beamforming with SMQ can be unfair to users with good channels.
Dual SMQ improves fairness among users.
Abstract
Multiuser, Multiple Input, Single Output (MU-MISO) systems are proving to be indispensable in the next generation wireless networks such as 5G and 6G. The spatial diversity of MISO systems have been leveraged in physical layer designs in these wireless systems to improve the capacity. Several recent studies have utilised redundancies in the content request along with the spatial diversity of a MISO system to improve the capacity further. It is shown that Max-Min Fair (MMF) Beamforming schemes for MISO based on SDMA, NOMA, OMA and Rate-Splitting could be used to improve the content delivery rates. However, in most of these studies the key aspects such as the queueing delays in the downlink and the user dynamics have generally been ignored. In this work, we study how the interplay between queueing, beamforming and the user dynamics affects the Quality-of-Service (user experienced delay)…
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Taxonomy
TopicsAdvanced MIMO Systems Optimization · Wireless Communication Networks Research · Advanced Wireless Network Optimization
