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Cooperative output regulation of heterogeneous directed multi-agent systems: a fully distributed model-free reinforcement learning framework
by
Gui, Weihua
, Shi, Xiongtao
, Li, Yanjie
, Li, Huiping
, Chen, Chaoyang
, Du, Chenglong
in
Accessibility
/ Algebra
/ Algorithms
/ Automation
/ Communication
/ Computer Science
/ Design
/ Event triggered control
/ Graph theory
/ Graphs
/ Information Systems and Communication Service
/ Liapunov functions
/ Multiagent systems
/ Research Paper
/ Riccati equation
2025
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Cooperative output regulation of heterogeneous directed multi-agent systems: a fully distributed model-free reinforcement learning framework
by
Gui, Weihua
, Shi, Xiongtao
, Li, Yanjie
, Li, Huiping
, Chen, Chaoyang
, Du, Chenglong
in
Accessibility
/ Algebra
/ Algorithms
/ Automation
/ Communication
/ Computer Science
/ Design
/ Event triggered control
/ Graph theory
/ Graphs
/ Information Systems and Communication Service
/ Liapunov functions
/ Multiagent systems
/ Research Paper
/ Riccati equation
2025
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Do you wish to request the book?
Cooperative output regulation of heterogeneous directed multi-agent systems: a fully distributed model-free reinforcement learning framework
by
Gui, Weihua
, Shi, Xiongtao
, Li, Yanjie
, Li, Huiping
, Chen, Chaoyang
, Du, Chenglong
in
Accessibility
/ Algebra
/ Algorithms
/ Automation
/ Communication
/ Computer Science
/ Design
/ Event triggered control
/ Graph theory
/ Graphs
/ Information Systems and Communication Service
/ Liapunov functions
/ Multiagent systems
/ Research Paper
/ Riccati equation
2025
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Cooperative output regulation of heterogeneous directed multi-agent systems: a fully distributed model-free reinforcement learning framework
Journal Article
Cooperative output regulation of heterogeneous directed multi-agent systems: a fully distributed model-free reinforcement learning framework
2025
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Overview
In this paper, the cooperative output regulation (COR) problem of a class of unknown heterogeneous multi-agent systems (MASs) with directed graphs is studied via a model-free reinforcement learning (RL) based fully distributed event-triggered control (ETC) strategy. First, we consider the scenario that the exosystem is accessible globally to all agents, an internal model-based augmented algebraic Riccati equation (AARE) is constructed, and its solution is learned by the proposed model-free RL algorithm via online input-output data. Further, for the scenario that the exosystem is accessible only to its adjacent followers, the distributed observers are designed for each agent to get the state of the exosystem, and an internal modelbased fully distributed adaptive ETC protocol is then synthesized to construct the corresponding AARE, and the feedback gain matrix is learned in a model-free fashion. The model-free RL-based control protocol proposed in this paper can not only remove the prior knowledge of agents’ dynamics, but also release the dependence on global information by the adaptive event-triggered mechanism (ETM) and the new graph-based Lyapunov function. Finally, simulation results are illustrated to show the feasibility and effectiveness of the proposed control scheme.
Publisher
Science China Press,Springer Nature B.V
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