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Constrained Distributed Model Predictive Control Strategy Based on Agent Coordination

机译:基于Agent协调的约束分布式模型预测控制策略。

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摘要

In this paper, a distributed model predictive control (DMPC) strategy is proposed based on agent coordination, in which subsystems couple through the inputs. At first, the initial feasible solution of each agent can be achieved by solving local optimization problems in which the state constraints of neighbor subsystems are considered at each sampling time. And then the global optimal solution can be obtained through agent coordination. In the negotiating process, the innovative global optimization objective is determined for the sake of reducing iteration time and improving the convergence speed efficiently. Finally, the accuracy and efficiency of the proposed scheme is put to test through simulation.
机译:在本文中,提出了一种基于代理协调的分布式模型预测控制(DMPC)策略,其中子系统通过输入耦合。首先,可以通过解决局部优化问题来实现每个代理的初始可行解,在局部优化问题中,在每个采样时间都要考虑相邻子系统的状态约束。然后可以通过代理协调获得全局最优解。在协商过程中,为了减少迭代时间并有效提高收敛速度,确定了创新的全局优化目标。最后,通过仿真对所提方案的准确性和有效性进行了测试。

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