Assisted Energy Management in Smart Microgrids
June 06, 2016 Β· Declared Dead Β· π Journal of Ambient Intelligence and Humanized Computing
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Authors
Andrea Monacchi, Wilfried Elmenreich
arXiv ID
1606.01949
Category
cs.AI: Artificial Intelligence
Cross-listed
eess.SY
Citations
33
Venue
Journal of Ambient Intelligence and Humanized Computing
Last Checked
4 months ago
Abstract
Demand response provides utilities with a mechanism to share with end users the stochasticity resulting from the use of renewable sources. Pricing is accordingly used to reflect energy availability, to allocate such a limited resource to those loads that value it most. However, the strictly competitive mechanism can result in service interruption in presence of competing demand. To solve this issue we investigate on the use of forward contracts, i.e., service level agreements priced to reflect the expectation of future supply and demand curves. Given the limited resources of microgrids, service interruption is an opposite objective to the one of service availability. We firstly design policy-based brokers and identify then a learning broker based on artificial neural networks. We show the latter being progressively minimizing the reimbursement costs and maximizing the overall profit.
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