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首页> 外文期刊>Automation Science and Engineering, IEEE Transactions on >Distributed Optimization for Model Predictive Control of Linear Dynamic Networks With Control-Input and Output Constraints
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Distributed Optimization for Model Predictive Control of Linear Dynamic Networks With Control-Input and Output Constraints

机译:具有控制输入和输出约束的线性动态网络模型预测控制的分布式优化

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摘要

A linear dynamic network is a system of subsystems that approximates the dynamic model of large, geographically distributed systems such as the power grid and traffic networks. A favorite technique to operate such networks is distributed model predictive control (DMPC), which advocates the distribution of decision-making while handling constraints in a systematic way. This paper contributes to the state-of-the-art of DMPC of linear dynamic networks in two ways. First, it extends a baseline model by introducing constraints on the output of the subsystems and by letting subsystem dynamics to depend on the state besides the control signals of the subsystems in the neighborhood. With these extensions, constraints on queue lengths and delayed dynamic effects can be modeled in traffic networks. Second, this paper develops a distributed interior-point algorithm for solving DMPC optimization problems with a network of agents, one for each subsystem, which is shown to converge to an optimal solution. In a traffic network, this distributed algorithm permits the subsystem of an intersection to be reconfigured by only coordinating with the subsystems in its vicinity.
机译:线性动态网络是子系统的系统,它近似于大型的,地理上分布的系统(例如,电网和交通网络)的动态模型。运营此类网络最喜欢的技术是分布式模型预测控制(DMPC),它倡导决策的分布,同时以系统的方式处理约束。本文以两种方式为线性动态网络DMPC的最新发展做出贡献。首先,它通过引入对子系统的输出的约束并让子系统动态依赖于邻域中子系统的控制信号之外的状态来扩展基线模型。通过这些扩展,可以在交通网络中对队列长度的约束和延迟的动态影响进行建模。其次,本文开发了一种分布式内点算法,用于通过代理网络(每个子系统一个)解决DMPC优化问题,该算法被证明可以收敛到最优解决方案。在交通网络中,此分布式算法仅通过与交叉路口附近的子系统协调即可允许对其进行重新配置。

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