收敛速率可控的容饱和平均一致性

Solmaz S. Kia, J. Cortés, S. Martínez
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引用次数: 1

摘要

本文研究了多智能体系统的静态平均一致性问题,提出了一种分布式算法,使各个智能体能够设定自己的收敛速度。该算法具有双时间尺度结构,采用奇异摄动方法构造。快速信息处理状态采用拉普拉斯共识策略,以分布式方式计算协议值。慢时间动态部分,称为运动阶段,允许每个代理以自己期望的速度向协议点移动。我们对提出的共识算法进行了完整的分析。这包括单个代理的收敛速度、通信延迟的影响、对网络拓扑变化的鲁棒性、离散时间的实现以及有限控制权限下的性能保证。我们的分析是基于矩阵理论,代数图论和稳定性分析的工具。数值算例说明了该算法的优越性。
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Saturation-tolerant average consensus with controllable rates of convergence
This paper considers the static average consensus problem for a multi-agent system and proposes a distributed algorithm that enables individual agents to set their own rate of convergence. The algorithm has a two-time scale structure and is constructed using a singular perturbation approach. A fast information processing state uses a Laplacian consensus strategy to calculate the agreement value in a distributed manner. The slow-time dynamic part, termed motion phase, allows each agent to move towards the agreement point at its own desired speed. We provide a complete analysis of the proposed consensus algorithm. This covers the rate of convergence of individual agents, effects of communication delays, robustness to changes in the network topology, implementation in discrete time, and performance guarantees under limited control authority. Our analysis is based on tools from matrix theory, algebraic graph theory and stability analysis. Numerical examples illustrate the benefits of the proposed algorithm.
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