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Distributed Consensus of Multi-Agent Systems With Input Constraints: A Model Predictive Control Approach

机译:具有输入约束的多智能体系统的分布式共识:模型预测控制方法

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摘要

The discrete-time double-integrator consensus problem is addressed for multi-agent systems with directed switching proximity topologies and input constraints. Some model predictive control protocols are developed to achieve stable consensus under the condition that the proximity graph has a directed spanning tree and the sampling period is sufficiently small. Moreover, the control horizon is extended to larger than one, which endows sufficient degrees of freedom to accelerate the convergence to consensus. Numerical simulations are conducted to show the effectiveness of the control algorithm.
机译:对于具有定向开关接近拓扑和输入约束的多智能体系统,解决了离散时间双积分器共识问题。在邻近图具有有向生成树且采样周期足够小时的情况下,开发了一些模型预测控制协议以实现稳定的一致性。此外,控制范围扩大到大于一,这赋予了足够的自由度以加速达成共识的步伐。进行了数值模拟以显示控制算法的有效性。

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