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Optimal Control of Unknown Discrete-Time Nonlinear Systems with Constrained Inputs Using GDHP Technique

机译:输入受限的未知离散时间非线性系统的最优控制

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摘要

The adaptive dynamic programming (ADP) approach is employed to design an optimal controller for unknown discrete-time nonlinear systems with control constraints. First, a neural network is constructed to identify the unknown dynamical system with stability proof. Then, the iterative ADP algorithm is developed to solve the optimal control problem with convergence analysis. Moreover, two other neural networks are introduced to approximate the cost function and its derivative and the control law, under the framework of globalized dual heuristic programming technique. Finally, two simulation examples are included to verify the theoretical results.
机译:自适应动态规划(ADP)方法用于设计具有控制约束的未知离散时间非线性系统的最优控制器。首先,构建神经网络来识别具有稳定性证明的未知动力学系统。然后,开发了迭代ADP算法,通过收敛性分析解决了最优控制问题。此外,在全球化的双重启发式编程技术的框架下,引入了另外两个神经网络来近似成本函数及其导数和控制律。最后,包括两个仿真示例以验证理论结果。

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