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Yun-Peng Ji

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Open access Aug 2026

Hierarchical Reinforcement Learning for Integrated Energy System Scheduling Based on Large Language Model Forecasting

An imitation-learning-based hierarchical proximal policy optimization strategy is developed to decompose the scheduling task into system-level energy coordination and device-level action execution, which achieves the fastest convergence compared with the three benchmark methods.

Ruo-Xu Zhao, Xuan Tan, Hui Wei et al. · 0 citations

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