2021
D. Pliatsios; A.A. Boulogeorgos; T. Lagkas; V. Argyriou; I. Moscholios; P. Sarigiannidis
Semi-Grant-Free Non-Orthogonal Multiple Access for Tactile Internet of Things Conference
2021 IEEE 32nd Annual International Symposium on Personal, Indoor and Mobile Radio Communications (PIMRC) (IEEE PIMRC 2021), 2021.
Περίληψη | BibTeX | Ετικέτες: Grant-Free, Internet of things, Non-orthogonal multiple access | Σύνδεσμοι:
@conference{D2021,
title = {Semi-Grant-Free Non-Orthogonal Multiple Access for Tactile Internet of Things},
author = {D. Pliatsios and A.A. Boulogeorgos and T. Lagkas and V. Argyriou and I. Moscholios and P. Sarigiannidis},
url = {https://www.researchgate.net/publication/352551145_Semi-Grant-Free_Non-Orthogonal_Multiple_Access_for_Tactile_Internet_of_Things},
doi = {10.1109/PIMRC50174.2021.9569640},
year = {2021},
date = {2021-09-12},
booktitle = {2021 IEEE 32nd Annual International Symposium on Personal, Indoor and Mobile Radio Communications (PIMRC) (IEEE PIMRC 2021)},
abstract = {Ultra-low latency connections for a massive number of devices are one of the main requirements of the nextgeneration tactile Internet-of-Things (TIoT). Grant-free nonorthogonal multiple access (GF-NOMA) is a novel paradigm that leverages the advantages of grant-free access and non-orthogonal transmissions, to deliver ultra-low latency connectivity. In this work, we present a joint channel assignment and power allocation solution for semi-GF-NOMA systems, which provides access to both grant-based (GB) and grant-free (GF) devices, maximizes the network throughput, and is capable of ensuring each device's throughput requirements. In this direction, we provide the mathematical formulation of the aforementioned problem. After explaining that it is not convex, we propose a solution strategy based on the Lagrange multipliers and subgradient method. To evaluate the performance of our solution, we carry out system-level Monte Carlo simulations. The simulation results indicate that the proposed solution can optimize the total system throughput and achieve a high association rate, while taking into account the minimum throughput requirements of both GB and GF devices.},
keywords = {Grant-Free, Internet of things, Non-orthogonal multiple access},
pubstate = {published},
tppubtype = {conference}
}
2019
D. Pliatsios; P. Sarigiannidis
Resource allocation combining heuristic matching and particle swarm optimization approaches: The case of Downlink Non-Orthogonal Multiple Access Journal Article
In: Information (Switzerland), vol. 10, no. 11, 2019.
Περίληψη | BibTeX | Ετικέτες: 5G, Heuristic optimization, Non-orthogonal multiple access, Resource allocation | Σύνδεσμοι:
@article{Pliatsios2019d,
title = {Resource allocation combining heuristic matching and particle swarm optimization approaches: The case of Downlink Non-Orthogonal Multiple Access},
author = { D. Pliatsios and P. Sarigiannidis},
url = {https://www.researchgate.net/publication/336928272_Resource_Allocation_Combining_Heuristic_Matching_and_Particle_Swarm_Optimization_Approaches_The_Case_of_Downlink_Non-Orthogonal_Multiple_Access},
doi = {10.3390/info10110336},
year = {2019},
date = {2019-01-01},
journal = {Information (Switzerland)},
volume = {10},
number = {11},
abstract = {The ever-increasing requirement of massive connectivity, due to the rapid deployment of internet of things (IoT) devices, in the emerging 5th generation (5G) mobile networks commands for even higher utilization of the available spectrum. Non-orthogonal multiple access (NOMA) is a promising solution that can effectively accommodate a higher number of users, resulting in increased spectrum utilization. In this work, we aim to maximize the total throughput of a NOMA system, while maintaining a good level of fairness among the users. We propose a three-step method where the first step matches the users to the channels using a heuristic matching algorithm, while the second step utilizes the particle swarm optimization algorithm to allocate the power to each channel. In the third step, the power allocated to each channel is further distributed to the multiplexed users based on their respective channel gains. Based on extensive performance simulations, the proposed method offers notable improvement, e.g., 15% in terms of system throughput and 55% in terms of user fairness. © 2019 by the authors.},
keywords = {5G, Heuristic optimization, Non-orthogonal multiple access, Resource allocation},
pubstate = {published},
tppubtype = {article}
}
Διεύθυνση
Internet of Things and Applications Lab
Department of Electrical and Computer Engineering
University of Western Macedonia Campus
ZEP Area, Kozani 50100
Greece
Πληροφορίες Επικοινωνίας
tel: +30 2461 056527
Email: ithaca@uowm.gr