Optimal Power Allocation and Time Sharing in Low Rank Multi-carrier Wi-Fi Channels

Fuente: arXiv
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Main Authors: Bhattacharya, Sagnik, Rajabalifardi, Kamyar, Mohsin, Muhammad Ahmed, Pote, Rohan, Cioffi, John M.
Format: Preprint
Published: 2024
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author Bhattacharya, Sagnik
Rajabalifardi, Kamyar
Mohsin, Muhammad Ahmed
Pote, Rohan
Cioffi, John M.
author_facet Bhattacharya, Sagnik
Rajabalifardi, Kamyar
Mohsin, Muhammad Ahmed
Pote, Rohan
Cioffi, John M.
contents The ever-evolving landscape of distributed wireless systems, e.g. multi-user AR/VR systems, demands high data rates (up to 500 Mbps per user) and low power consumption. With increasing number of participating users, uplink data transmission in the situation where the number of transmitter user antennas exceeds the number of access point (AP) antennas presents a low-rank channel problem. Current Wi-Fi standards using orthogonal multiple access (OMA) fail to address these requirements. Non-orthogonal multiple access (NOMA)-based systems, while outperforming the OMA methods, still fall short of the requirement in low-rank channel uplink transmission, because they adhere to a single decoding order for successive interference cancelation (SIC). This paper proposes and develops a novel optimal power-subcarrier allocation algorithm to maximize the achieved data rates for this low rank channel scenario. Additionally, the proposed algorithm implements a novel time-sharing algorithm for simultaneously participating users, which adaptively varies the decoding orders to achieve higher data rates than any single decoding order. Extensive experimental validations demonstrate that the proposed algorithm achieves 39%, 28%, and 16% higher sum data rates than OMA, NOMA, and multi-carrier NOMA baselines respectively, under low-rank channel conditions, under varying SNR values. We further show that the proposed algorithm significantly outperforms the baselines with varying numbers of users or AP antennas, showing the effectiveness of the optimal power allocation and time-sharing.
format Preprint
id arxiv_https___arxiv_org_abs_2410_21782
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Optimal Power Allocation and Time Sharing in Low Rank Multi-carrier Wi-Fi Channels
Bhattacharya, Sagnik
Rajabalifardi, Kamyar
Mohsin, Muhammad Ahmed
Pote, Rohan
Cioffi, John M.
Signal Processing
Information Theory
The ever-evolving landscape of distributed wireless systems, e.g. multi-user AR/VR systems, demands high data rates (up to 500 Mbps per user) and low power consumption. With increasing number of participating users, uplink data transmission in the situation where the number of transmitter user antennas exceeds the number of access point (AP) antennas presents a low-rank channel problem. Current Wi-Fi standards using orthogonal multiple access (OMA) fail to address these requirements. Non-orthogonal multiple access (NOMA)-based systems, while outperforming the OMA methods, still fall short of the requirement in low-rank channel uplink transmission, because they adhere to a single decoding order for successive interference cancelation (SIC). This paper proposes and develops a novel optimal power-subcarrier allocation algorithm to maximize the achieved data rates for this low rank channel scenario. Additionally, the proposed algorithm implements a novel time-sharing algorithm for simultaneously participating users, which adaptively varies the decoding orders to achieve higher data rates than any single decoding order. Extensive experimental validations demonstrate that the proposed algorithm achieves 39%, 28%, and 16% higher sum data rates than OMA, NOMA, and multi-carrier NOMA baselines respectively, under low-rank channel conditions, under varying SNR values. We further show that the proposed algorithm significantly outperforms the baselines with varying numbers of users or AP antennas, showing the effectiveness of the optimal power allocation and time-sharing.
title Optimal Power Allocation and Time Sharing in Low Rank Multi-carrier Wi-Fi Channels
topic Signal Processing
Information Theory
url https://arxiv.org/abs/2410.21782