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Resilient Cooperative Optimal Output Regulation Control for Nonlinear Multiagent Systems.
IEEE Transactions on Cybernetics
|January 1, 2026
Summary
This study presents a resilient control strategy for nonlinear multiagent systems facing denial-of-service attacks. It uses adaptive observers and neural networks to achieve cooperative optimal output regulation, enhancing system security and applicability.
Area of Science:
- Control Systems Engineering
- Artificial Intelligence
- Cybersecurity
Background:
- Multiagent systems (MASs) are susceptible to denial-of-service (DoS) attacks, compromising their cooperative optimal output regulation (COOR).
- Existing resilient control strategies often do not adequately address nonlinear dynamics in MASs.
Purpose of the Study:
- To develop a resilient adaptive distributed observer-based control strategy for nonlinear strict-feedback MASs under DoS attacks.
- To achieve cooperative optimal output regulation (COOR) in MASs despite external disturbances and unknown system dynamics.
Main Methods:
- Construction of resilient adaptive distributed observers for leader state estimation.
- Design of a control input using feedforward and feedback components.
- Application of neural networks (NNs) and an off-policy integral reinforcement learning (IRL) algorithm with actor-critic NNs (A-C NNs) for optimal control law derivation.
Main Results:
- Successful estimation of leader dynamics and states by followers via adaptive observers.
- Development of an optimal feedback security control law robust to unknown nonlinear dynamics.
- Demonstration of the strategy's feasibility and effectiveness through numerical and practical simulations.
Conclusions:
- The proposed resilient COOR control strategy effectively handles nonlinear dynamics in MASs under DoS attacks.
- This approach significantly broadens the applicability of resilient COOR control in real-world scenarios compared to linear system limitations.
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