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Multilayered Network Model for Mobile Network Infrastructure Disruption.

David Hrabcak1, Lubomir Dobos1, Jan Papaj1

  • 1Department of Electronic and Multimedia Communication, Technical University of Kosice, Bozeny Nemcovej 26/32, 040 01 Kosice, Slovakia.

Sensors (Basel, Switzerland)
|September 30, 2020
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Summary

This study introduces a resilient multilayered network model integrating Wireless Sensor Networks, Mobile Ad-Hoc Networks, and DRONET Networks for 5G infrastructure. The model enhances critical communication during disruptions, outperforming traditional networks in simulations.

Keywords:
5GDRONETIoTMANETWSNmultilayered network modelsmart sensors

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Area of Science:

  • Computer Science
  • Network Engineering
  • Telecommunications

Background:

  • 5G mobile networks and the Internet of Things (IoT) are driving the need for complex, interconnected networks.
  • Existing network infrastructures face vulnerabilities to disruptions from disasters or malicious acts.
  • Resilient communication systems are crucial for smart city applications, including public safety and health.

Purpose of the Study:

  • To introduce a novel multilayered network model for disrupted 5G infrastructure.
  • To integrate Wireless Sensor Networks (WSN), Mobile Ad-Hoc Networks (MANET), and DRONET Networks into a cohesive system.
  • To provide a resilient solution for critical communication during infrastructure failures.

Main Methods:

  • Development of a multilayered network architecture.
  • Integration of WSN, MANET, and DRONET technologies.
  • Simulation-based performance evaluation under disruption scenarios.

Main Results:

  • The proposed multilayered network demonstrates superior performance compared to traditional WSN networks.
  • Key performance indicators improved, including delivery time, average number of hops, and data rate speed.
  • The model effectively maintains critical communication during simulated infrastructure disruptions.

Conclusions:

  • The novel multilayered network model offers a resilient approach to 5G infrastructure challenges.
  • This model supports critical smart city applications by ensuring communication continuity.
  • The integration of diverse network types enhances network robustness and functionality.