Submitted:
29 January 2025
Posted:
30 January 2025
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Abstract
Keywords:
1. Introduction
2. Goals
3. Proposed Methodology
- Definition and execution of a series of benchmarks to evaluate the best experimental environment to perform simulations and emulations of LTE network communications in a SPG environment;
- Survey of architecture proposals previously found in the literature and evaluation of them in terms of refined monitoring of the electrical grid and services for SPG systems;
- Adaptation of the best architecture from the previous item so that it can support massive machine-to-machine communication expected in SPG environments;
- Modification of the previous version of the InterSCity platform to support SPG applications with QoS guarantees.
4. Related Works
4.1. Data Network Simulator
4.2. Electric Power Grid Simulators
4.3. Electric Power Grid and Data Communication CoSimulations
5. Description of Cosimulated Systems
5.1. Smart Power Grids (SPG) and NAPREI Laboratory
5.2. Communication Systems
5.3. Smart Cities Platform - InterSCity
6. Results
6.1. LTE/MEC Data Network Simulation
6.2. Integration of the InterSCity Platform between SPG and other Smartcity Verticals
7. Conclusion and Future Works
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Reference | Simulator | Net Simul | HIL | IoT | Smart City |
|---|---|---|---|---|---|
| [34] | PSCAD/EMTDC PSLF | ns-2 | No | No | No |
| [35] | Hampden 180 | LAN | No | No | No |
| [36] | OpenDSS | OPMET | No | No | No |
| [37] | Python Modelica | ns-3 | No | No | No |
| [4] | Python Matlab Simulink | ns-3 Mininet Omnet++ | Yes | Yes | No |
| [9,10] | NAPREI | 6LoWPAN | Yes | No | No |
| Our Proposal | NAPREI InterSCity | ns-3 | Yes | Yes | Yes |
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