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Real-time optimization of the integrated gas and power systems using hybrid approximate dynamic programming

机译:使用混合近似动态编程对燃气和电力系统进行实时优化

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摘要

This paper proposes a hybrid approximate dynamic programming (HADP) approach for the optimal operation of integrated gas and power systems (IGPS) under the stochastic environment. The proposed HADP, combining the advantages of the model predictive control (MPC) and approximate dynamic programming (ADP), decomposes the multi-time-period optimization into multiple sequential subproblems by solving Bellman's equation forward through time. Historical data is utilized to build the approximate value functions so that the influence of current decisions on the future is estimated. And hence, the HADP algorithm can obtain a near-optimal solution through the whole time horizon of interest. Meanwhile, the MPC policy is embedded in the HADP to replace the long-term forecast with short-term or even real-time prediction. This further improves the optimality of the decisions made by the proposed HADP. The simulation results on the IGPS demonstrate the proposed HADP outperforms alternative solutions.
机译:本文提出了一种混合近似动态规划(HADP)方法,用于在随机环境下优化天然气和电力系统(IGPS)的综合运行。提出的HADP结合了模型预测控制(MPC)和近似动态规划(ADP)的优点,通过逐步解决Bellman方程,将多时间周期优化分解为多个顺序子问题。历史数据用于构建近似值函数,以便估算当前决策对未来的影响。因此,HADP算法可以在整个感兴趣的时间范围内获得接近最佳的解决方案。同时,MPC策略已嵌入到HADP中,以短期或什至实时预测代替长期预测。这进一步提高了由提议的HADP做出的决策的最优性。在IGPS上的仿真结果表明,所提出的HADP优于其他解决方案。

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