TY - JOUR
T1 - Optimizing Resources and Increasing the Coverage of Internet-of-Things (IoT) Networks:
T2 - An Approach based on LoRaWAN
AU - Gava, Matheus Araujo
AU - Rocha, Helder Roberto Oliveira
AU - Faber, Menno Jan
AU - Segatto, Marcelo Eduardo Vieira
AU - Wörtche, Heinrich
AU - Silva, Jair Adriano Lima
PY - 2023/1/21
Y1 - 2023/1/21
N2 - A resource optimization methodology is proposed for application in long range wide area networks (LoRaWANs). Using variable neighborhood search (VNS) and a minimum-cost spanning tree algorithm, it reduces the implementation and the maintenance costs of such low power networks. Performance evaluations were conducted in LoRaWANs with LoRa repeaters to increase coverage, in scenario where the number and the location of the repeaters are determined by the VNS metaheuristic. Parameters such as spread factor (SF), bandwidth and transmission power were adjusted to minimize the network’s total energy per useful bit (Ebit) and the total data collection time. The importance of the SF in the trade-off between (Ebit) and time on-air is evaluated, considering a device scaling factor. Simulation results, obtained after model adjustments with experimental data, show that, in networks with few associated devices, there is a preference for small values of SF aiming at reduction of Ebit. The usage of large SF’s becomes relevant when reach extensions are required. The results also demonstrate that, for networks with high number of nodes, the scaling of devices over time become relevant in the fitness function, forcing an equal distribution of time slots per SF to avoid discrepancies in the time data collection.
AB - A resource optimization methodology is proposed for application in long range wide area networks (LoRaWANs). Using variable neighborhood search (VNS) and a minimum-cost spanning tree algorithm, it reduces the implementation and the maintenance costs of such low power networks. Performance evaluations were conducted in LoRaWANs with LoRa repeaters to increase coverage, in scenario where the number and the location of the repeaters are determined by the VNS metaheuristic. Parameters such as spread factor (SF), bandwidth and transmission power were adjusted to minimize the network’s total energy per useful bit (Ebit) and the total data collection time. The importance of the SF in the trade-off between (Ebit) and time on-air is evaluated, considering a device scaling factor. Simulation results, obtained after model adjustments with experimental data, show that, in networks with few associated devices, there is a preference for small values of SF aiming at reduction of Ebit. The usage of large SF’s becomes relevant when reach extensions are required. The results also demonstrate that, for networks with high number of nodes, the scaling of devices over time become relevant in the fitness function, forcing an equal distribution of time slots per SF to avoid discrepancies in the time data collection.
KW - internet der dingen
KW - sensoren
KW - netwerken
KW - slimme systemen
KW - internet of things
KW - sensors
KW - networks
KW - smart systems
U2 - https://doi.org/10.3390/s23031239
DO - https://doi.org/10.3390/s23031239
M3 - Article
VL - 23
JO - Sensors
JF - Sensors
SN - 1424-3210
IS - 3
ER -