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A Decision-Focused Predict-then-Bid Framework for Strategic Energy Storage

A Decision-Focused Predict-then-Bid Framework for Strategic Energy Storage

来源:Arxiv_logoArxiv
英文摘要

This paper introduces a novel decision-focused framework for energy storage arbitrage bidding. Inspired by the bidding process for energy storage in electricity markets, we propose a predict-then-bid end-to-end method incorporating the storage arbitrage optimization and market clearing models. This is achieved through a tri-layer framework that combines a price prediction layer with a two-stage optimization problem: an energy storage optimization layer and a market-clearing optimization layer. We leverage the implicit function theorem for gradient computation in the first optimization layer and incorporate a perturbation-based approach into the decision-focused loss function to ensure differentiability in the market-clearing layer. Numerical experiments using electricity market data from New York demonstrate that our bidding design substantially outperforms existing methods, achieving the highest profits and showcasing the effectiveness of the proposed approach.

Ming Yi、Yiqian Wu、Saud Alghumayjan、James Anderson、Bolun Xu

能源动力工业经济能源概论、动力工程概论

Ming Yi,Yiqian Wu,Saud Alghumayjan,James Anderson,Bolun Xu.A Decision-Focused Predict-then-Bid Framework for Strategic Energy Storage[EB/OL].(2025-05-02)[2025-07-16].https://arxiv.org/abs/2505.01551.点此复制

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