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Louise Sadoine

Publications and source records attributed to Louise Sadoine.

2 recordsLinked to original sources

A Decision-Making Framework for New Member Integration in Renewable Energy Communities under Prospect Theory

This paper introduces an original approach to an underexplored issue: the integration of a new member into an existing renewable energy community. The problem involves actions with both long-term consequences, such as investment and local pricing, and short-term operational ones, such as daily energy and financial flow management. Long-term decision-making is modeled using finite extensive-form game theory, while short-term day-ahead scheduling decisions are formulated as a generalized Nash equilibrium problem. This framework explicitly accounts for heterogeneous stakeholder preferences and bounded rationality, modeled through prospect theory. The proposed approach is flexible and general, making it applicable to various objectives and decision-making contexts in the evolving landscape of renewable energy communities. It is applied to two communities with five members, eleven candidate users, multiple preference configurations and a comparison with heuristic metrics from the literature is also addressed. The model also exhibits that equilibrium outcomes and stakeholder behavior are influenced by the order of decisions, their preference criteria, and prospect theory parameters particularly the reference point selection.

cs.GT

Valuing the Electricity Produced Locally in Renewable Energy Communities through Noncooperative Resources Scheduling Games

We propose two market designs for the optimal day-ahead scheduling of energy exchanges within renewable energy communities. The first one implements a cooperative demand side management scheme inside a community where members objectives are coupled through grid tariffs, whereas the second allows in addition the valuation of excess generation in the community and on the retail market. Both designs are formulated as centralized optimization problems first, and as non cooperative games then. In the latter case, the existence and efficiency of the corresponding (Generalized) Nash Equilibria are rigorously studied and proven, and distributed implementations of iterative solution algorithms for finding these equilibria are proposed, with proofs of convergence. The models are tested on a use-case made by 55 members with PV generation, storage and flexible appliances, and compared with a benchmark situation where members act individually (situation without community). We compute the global REC costs and individual bills, inefficiencies of the decentralized models compared to the centralized optima, as well as technical indices such as self-consumption ratio, self-sufficiency ratio, and peak-to-average ratio.

cs.GT