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An approximate dynamic programming approach for model-free control of switched systems

机译:开关系统的无模型控制的近似动态编程方法

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Several approximate dynamic programming (ADP) algorithms have been developed and demonstrated for the model-free control of continuous and discrete dynamical systems. However, their applicability to hybrid systems that involve both discrete and continuous state and control variables has yet to be demonstrated in the literature. This paper presents an ADP approach for hybrid systems (hybrid-ADP) that obtains the optimal control law and discrete action sequence via online learning. New recursive relationships for hybrid-ADP are presented for switched hybrid systems that are possibly nonlinear. In order to demonstrate the ability of the proposed ADP algorithm to converge to the optimal solution, the approach is demonstrated on a switched, linear hybrid system with a quadratic cost function, for which there exists an analytical solution. The results show that the ADP algorithm is capable of converging to the optimal switched control law, by minimizing the cost-to-go online, based on an observable state vector.
机译:已经开发出了几种近似动态编程(ADP)算法,并已对其进行了演示,它们可用于连续和离散动态系统的无模型控制。但是,它们对涉及离散状态和连续状态以及控制变量的混合系统的适用性尚未在文献中得到证明。本文提出了一种用于混合系统(混合ADP)的ADP方法,该方法通过在线学习获得最佳控制律和离散动作序列。针对可能是非线性的切换混合系统,提出了混合ADP的新递归关系。为了证明所提出的ADP算法收敛于最优解的能力,在具有二次成本函数的切换线性混合系统中对该方法进行了证明,并针对该问题存在一个解析解。结果表明,基于可观察的状态向量,ADP算法能够通过最小化在线成本来收敛到最优切换控制律。

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