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Machine Learning Application to Priority Scheduling in Smart Microgrids
- Source :
- IWCMC, 2020 International Wireless Communications and Mobile Computing (IWCMC), IWCMC 2020: 16th International Wireless Communications and Mobile Computing, IWCMC 2020: 16th International Wireless Communications and Mobile Computing, Jun 2020, Limassol (online), Cyprus. pp.1695-1700, ⟨10.1109/IWCMC48107.2020.9148096⟩
- Publication Year :
- 2020
- Publisher :
- IEEE, 2020.
-
Abstract
- International audience; The need to integrate flexible and intelligent mechanisms for energy management becomes a necessity. In this paper, we are considering a microgrid with infrastructures having production capacities and consumption needs. Several data and constraints related to the microgrid consumption have been collected, in addition to data concerning the production of renewable energy from Photovoltaic panels (PV). Data history is used as input to a neural network to predict one day ahead of consumption and production. Then, a prioritized scheduling family of algorithms is presented. First, we introduce a mathematical formulation to our problem. Then, we propose various scenarios that go from an exact solution to heuristic-based use cases, including scheduling of several energy classes with a maximum scheduling time lapse. Results show that prioritized scheduling, including time lapse based on predictions, can give more reliable results than scheduling based on bin packing.
- Subjects :
- Optimization
Energy management
Computer science
Heuristic (computer science)
Smart microgrid
Distributed computing
Scheduling (production processes)
Bin packing (BP)
Artificial intelligence (AI)
01 natural sciences
7. Clean energy
010305 fluids & plasmas
Scheduling (computing)
03 medical and health sciences
[INFO.INFO-LG]Computer Science [cs]/Machine Learning [cs.LG]
0103 physical sciences
Production (economics)
030304 developmental biology
0303 health sciences
Artificial neural network
business.industry
Heuristic
Bin packing problem
Priority scheduling
Renewable energy
Deep learning (DL)
Long short-term memory (LSTM)
Microgrid
business
Subjects
Details
- Database :
- OpenAIRE
- Journal :
- 2020 International Wireless Communications and Mobile Computing (IWCMC)
- Accession number :
- edsair.doi.dedup.....bcea8719b081cde58537207e7eaee041
- Full Text :
- https://doi.org/10.1109/iwcmc48107.2020.9148096