Resource allocation for NOMA-based LPWA networks powered by energy
harvesting
harvesting
File(s)2012.14834v1.pdf (662.2 KB)
Working paper
Author(s)
Benkhelifa, Fatma
McCann, Julie A
Type
Working Paper
Abstract
In this paper, we explore perpetual, scalable, Low-powered Wide-area networks (LPWA). Specifically we focus on the uplink transmissions of non-orthogonal multiple access (NOMA)-based LPWA networks consisting of multiple self-powered nodes and a NOMA-based single gateway. The self-powered LPWA nodes use the "harvest-then-transmit" protocol where they harvest energy from ambient sources (solar and radio frequency signals), then transmit their signals. The main features of the studied LPWA network are different transmission times-on-air, multiple uplink transmission attempts, and duty cycle restrictions. The aim of this work is to maximize the time-averaged sum of the uplink transmission rates by optimizing the transmission time-on-air allocation, the energy harvesting time allocation and the power allocation; subject to a maximum transmit power and to the availability of the harvested energy. We propose a low complex solution which decouples the optimization problem into three sub-problems: we
assign the LPWA node transmission times (using either the fair or unfair
approaches), we optimize the energy harvesting (EH) times using a
one-dimensional search method, and optimize the transmit powers using a
concave-convex (CCCP) procedure. In the simulation results, we focus on Long Range (LoRa) networks as a practical example LPWA network. We validate our proposed solution and we observe a $15\%$ performance improvement when using NOMA.
assign the LPWA node transmission times (using either the fair or unfair
approaches), we optimize the energy harvesting (EH) times using a
one-dimensional search method, and optimize the transmit powers using a
concave-convex (CCCP) procedure. In the simulation results, we focus on Long Range (LoRa) networks as a practical example LPWA network. We validate our proposed solution and we observe a $15\%$ performance improvement when using NOMA.
Date Issued
2020-12-29
Date Acceptance
2020-12-01
Citation
2020
Publisher
arXiv
Copyright Statement
© 2021 The Author(s)
Identifier
http://arxiv.org/abs/2012.14834v1
Source
IEEE Wireless Communications and Networking Conference (WCNC)
Subjects
eess.SP
eess.SP
math.OC
Publication Status
Published
Start Date
2021-03-29
Finish Date
2021-04-01
Coverage Spatial
Nanjing, China (virtual)
Date Publish Online
2021-05-05