This repo is dedicated to the development of Machine/Deep Learning models that can be seamlessly integrated into the energy sector. As we all know, the energy sector plays a key role in our daily lives, and its challenges are becoming increasingly complex, particularly in light of climate change and the volatile pricing of fossil energy sources. The objective is to tackle these challenges by harnessing the power of AI-driven models, which promise cost reduction, sustainability, and the more efficient utilization and management of energy resources.
Accurate power demand forecasting is crucial for energy providers to optimize resources, reduce costs, and ensure uninterrupted supply. Our AI models analyze historical data, weather patterns, and other factors to make precise demand forecasts, leading to more efficient energy distribution.
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- Power consumption forecast
- Enefit Predict Energy Behavior of Prosumers - Kaggle competition link (In Progress)
Maintaining energy grids is expensive and time-consuming. Our AI models monitor grid components, predicting when maintenance is needed. This proactive approach reduces downtime, improves reliability, and saves costs.
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As the energy sector shifts towards renewable sources, accurate predictions of power generation from weather data are essential. Our AI models optimize the use of renewable resources for better grid management.
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Efficient energy use extends beyond large-scale infrastructure. AI optimizes energy consumption within buildings and houses by adjusting heating, cooling, and lighting systems, reducing waste, and lowering energy bills.
The future smart grid requires real-time monitoring and decision-making for stability. Our AI models predict grid stability issues and propose real-time solutions, preventing power outages and disruptions.
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Contributions are welcome from AI enthusiasts, energy sector experts, and developers. Whether you want to open issues, submit pull requests, or collaborate, reach out to me: aymenMir1001@gmail.com.
Distributed under the MIT License. See LICENSE.txt
for more information.