BLE Mesh Reliability Optimization using Neural Networks

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dc.contributor.author Bratus, Oleksandr
dc.date.accessioned 2021-06-29T10:14:21Z
dc.date.available 2021-06-29T10:14:21Z
dc.date.issued 2021
dc.identifier.citation Bratus, Oleksandr. BLE Mesh Reliability Optimization using Neural Networks / Oleksandr Bratus; Supervisor: Dr. Oleg Farenyuk; Ukrainian Catholic University, Department of Computer Sciences. – Lviv : [s.n.], 2021. – 44 p.: ill. uk
dc.identifier.uri https://er.ucu.edu.ua/handle/1/2699
dc.description.abstract The Bluetooth Low Energy (BLE) Mesh network technology is one of the newest technologies in the wireless communication domain. Due to low cost and low power consumption, it has already become widespread and has the potential for a wide range of applications. However, the flooding algorithm on which based BLE Mesh data transmission process impacts strongly on networks reliability. Because improper network setup can be critical to ensuring sufficient network reliability, it is necessary to be able to predict the network reliability in order to be able to reconfigure the network to improve its reliability. In this master thesis, we propose neural network approaches that predict the reliability of both the entire network and its individual nodes. Presented results demonstrate that trained neural networks are scalable by providing high accuracy of predictions on networks of different sizes. uk
dc.language.iso en uk
dc.subject Wireless communication uk
dc.subject BLE Mesh technology uk
dc.subject BLE Mesh Simulator uk
dc.title BLE Mesh Reliability Optimization using Neural Networks uk
dc.type Preprint uk
dc.status Публікується вперше uk


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