Foresighted Demand Side Management
Yuanzhang Xiao, Mihaela van der Schaar

TL;DR
This paper introduces a decentralized framework for demand side management in smart grids, enabling independent entities to optimize long-term costs and achieve social optimality despite information asymmetry and complex coupling.
Contribution
It proposes a novel distributed decision-making framework where the ISO provides conjectured prices, allowing aggregators to minimize costs and reach social optimality in a complex, decentralized system.
Findings
Framework achieves social optimality in decentralized settings
Aggregators effectively minimize long-term costs using conjectured prices
System manages complex coupling and information asymmetry
Abstract
We consider a smart grid with an independent system operator (ISO), and distributed aggregators who have energy storage and purchase energy from the ISO to serve its customers. All the entities in the system are foresighted: each aggregator seeks to minimize its own long-term payments for energy purchase and operational costs of energy storage by deciding how much energy to buy from the ISO, and the ISO seeks to minimize the long-term total cost of the system (e.g. energy generation costs and the aggregators' costs) by dispatching the energy production among the generators. The decision making of the entities is complicated for two reasons. First, the information is decentralized: the ISO does not know the aggregators' states (i.e. their energy consumption requests from customers and the amount of energy in their storage), and each aggregator does not know the other aggregators' states…
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Taxonomy
TopicsSmart Grid Energy Management · Advanced Queuing Theory Analysis · Smart Grid Security and Resilience
