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首页> 外文期刊>The Korean journal of chemical engineering >Simulation-Based Learning of Cost-To-Go for Control of Nonlinear Processes
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Simulation-Based Learning of Cost-To-Go for Control of Nonlinear Processes

机译:基于仿真的非线性过程控制成本学习

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摘要

In this paper, we present a simulation-based dynamic programming method that learns the 'cost-to-go' function in an iterative manner. The method is intended to combat two important drawbacks of the conventional Model Predictive Control (MPC) formulation, which are the potentially exorbitant online computational requirement and the inability to consider the future interplay between uncertainty and estimation in the optimal control calculation. We use a nonlinear Van de Vusse reactor to investigate the efficacy of the proposed approach and identify further research issues.
机译:在本文中,我们提出了一种基于仿真的动态编程方法,该方法以迭代方式学习“成本成本”功能。该方法旨在解决常规模型预测控制(MPC)公式的两个重要缺陷,即潜在的过高的在线计算要求以及无法在最优控制计算中考虑不确定性和估计之间的未来相互作用。我们使用非线性Van de Vusse反应堆来研究所提出方法的有效性并确定进一步的研究问题。

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