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A switched dynamical system approach towards the optimal control of chemical processes based on a gradient-based parallel optimization algorithm

机译:基于梯度并行优化算法的化工过程最优控制的切换动力学系统方法

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This paper considers an optimal control problem of chemical processes with a novel piecewise state-feedback controller. Firstly, the chemical process optimal control problem is formulated as a switched dynamical system optimal control problem, which can be transformed into a parameter optimization problem. Next, to achieve rapid convergence from remote starting points, we propose a novel gradient-based optimization algorithm, which is suitable to a parallel implementation because the step is improved by updating its direction as well as its length simultaneously before moving to the next iteration, and the step computation involves only the inner products of vectors. Then, the convergent properties of the parameter optimization problem to the original optimal control problem are discussed. Finally, the numerical simulation results show that the gradient-based parallel optimization algorithm is an effective alternative method for solving the chemical process optimal control problems. (C) 2018 Elsevier Ltd. All rights reserved.
机译:本文考虑了一种新颖的分段状态反馈控制器对化学过程的最优控制问题。首先,将化学过程最优控制问题表述为切换动力学系统最优控制问题,可以将其转化为参数优化问题。接下来,为了实现从远程起点的快速收敛,我们提出了一种新颖的基于梯度的优化算法,该算法适用于并行实现,因为在移动至下一个迭代之前,通过同时更新步长和步长来改进步长,步骤计算仅涉及向量的内积。然后,讨论了参数优化问题与原始最优控制问题的收敛性质。最后,数值仿真结果表明,基于梯度的并行优化算法是解决化工过程最优控制问题的有效替代方法。 (C)2018 Elsevier Ltd.保留所有权利。

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