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Dual iterative adaptive dynamic programming for a class of discrete-time nonlinear systems with time-delays

机译:一类具有时滞的离散非线性系统的双重迭代自适应动态规划

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In this paper, a new dual iterative adaptive dynamic programming (ADP) algorithm is developed to solve optimal control problems for a class of nonlinear systems with time-delays in state and control variables. The idea is to use the dynamic programming theory to solve the expressions of the optimal performance index function and control. Then, the dual iterative ADP algorithm is introduced to obtain the optimal solutions iteratively, where in each iteration, the performance index function and the system states are both updated. Convergence analysis is presented to prove the performance index function to reach the optimum by the proposed method. Neural networks are used to approximate the performance index function and compute the optimal control policy, respectively, for facilitating the implementation of the dual iterative ADP algorithm. Simulation examples are given to demonstrate the validity of the proposed optimal control scheme.
机译:为了解决一类具有状态和控制变量时滞的非线性系统的最优控制问题,本文提出了一种新的双重迭代自适应动态规划算法。该想法是使用动态规划理论来求解最佳性能指标函数和控制的表达式。然后,引入双重迭代ADP算法来迭代获得最优解,其中在每次迭代中,性能指标函数和系统状态均被更新。通过收敛性分析,证明了所提出方法的性能指标函数达到最优。使用神经网络分别逼近性能指标函数并计算最佳控制策略,以促进双重迭代ADP算法的实现。仿真实例证明了所提出的最优控制方案的有效性。

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