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MFG model with a long-lived penalty at random jump times: application to demand side management for electricity contracts

  • Laboratoire de Finance des Marchés de l’énergie
  • University of Milano
  • King's College London
  • University of Hong Kong

Research output: Contribution to journalArticlepeer-review

Abstract

We consider an energy system with n consumers who are linked by a Demand Side Management (DSM) contract, i.e. they agreed to diminish, at random times, their aggregated power consumption by a predefined volume during a predefined duration. Their failure to deliver the service is penalised via the difference between the sum of the n power consumptions and the contracted target. We are led to analyse a non-zero sum stochastic game with n players, where the interaction takes place through a cost which involves a delay induced by the duration included in the DSM contract. When n→∞, we obtain a Mean-Field Game (MFG) with random jump time penalty and interaction on the control. We prove a stochastic maximum principle in this context, which allows to compare the MFG solution to the optimal strategy of a central planner. In a linear quadratic setting we obtain a semi-explicit solution through a system of decoupled forward-backward stochastic differential equations with jumps, involving a Riccati Backward SDE with jumps. We show that it provides an approximate Nash equilibrium for the original n-player game for n large. Finally, we propose a numerical algorithm to compute the MFG equilibrium and present several numerical experiments.

Original languageEnglish
Pages (from-to)541-569
Number of pages29
JournalAnnals of Operations Research
Volume336
Issue number1-2
DOIs
Publication statusPublished - 1 May 2024
Externally publishedYes

Keywords

  • Delay
  • Demand side management
  • Mean-field control
  • Mean-field games
  • Real-time pricing
  • Riccati BSDE with jumps
  • Stochastic maximum principle

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