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Data-based Optimal Control for Discrete-time Zero-sum Games of 2-D Systems Using Adaptive Critic Designs
基于数据自适应评判的离散2-D系统零和博弈最优控制(英文)

Keywords: Adaptive critic designs (ACD),optimal control,zero-sum game,2-D system,neural networks
自适应评判设计
,最优控制,零和对策,2-D系统,神经网络

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Abstract:

In this paper, an iterative adaptive critic design (ACD) algorithm is proposed to solve a class of discrete-time twoperson zero-sum games for Roesser type 2-D system. The idea is to use adaptive critic technique to obtain the optimal control pair iteratively to make the performance index function reach the saddle point of the zero-sum games. The proposed iterative ACD algorithm can be implemented based on the input and state data without the system model. Stability analysis of the 2-D system is presented and the convergence property of the performance index function is also proved. Neural networks are used to approximate the performance index function and compute the optimal control policies, respectively, for facilitating the implementation of the iterative ACD algorithm. The optimal control scheme of the air drying process is given to illustrate the performance of the proposed method.

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