Observer-based \(\mathcal{H}_\infty\) control of networked systems with stochastic communication protocol: the finite-horizon case
DOI10.1016/j.automatica.2015.10.045zbMath1329.93041OpenAlexW2107704171MaRDI QIDQ901226
Huijun Gao, Lei Zou, Zidong Wang
Publication date: 23 December 2015
Published in: Automatica (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1016/j.automatica.2015.10.045
time-varying systemsnetworked control systems\(\mathcal{H}_\infty\) controlrecursive Riccati difference equationsstochastic communication protocol
(H^infty)-control (93B36) Observability (93B07) Stochastic systems in control theory (general) (93E03) Large-scale systems (93A15)
Related Items (39)
Cites Work
- Unnamed Item
- Stability analysis of networked control systems with round-robin scheduling and packet dropouts
- Stability analysis of stochastic networked control systems
- Probability-guaranteed \(H_\infty\) finite-horizon filtering for a class of nonlinear time-varying systems with sensor saturations
- Reliable control for networked control systems with probabilistic actuator fault and random delays
- Optimal linear estimation for networked systems with communication constraints
- Envelope-constrained \(\mathcal{H}_\infty\) filtering with fading measurements and randomly occurring nonlinearities: the finite horizon case
- Open-loop Nash equilibrium in polynomial differential games via state-dependent Riccati equation
- A round-robin type protocol for distributed estimation with \(H_\infty\) consensus
- Optimal \(\mathcal H_{\infty}\) filtering in networked control systems with multiple packet dropouts
- On finite-horizon \(\ell_2\)-induced norms of discrete-time switched linear systems
- Finite horizon H/sub ∞/ state-feedback control of continuous-time systems with state delays
- Finite-Horizon <inline-formula> <tex-math notation="TeX">${\cal H}_{\infty}$</tex-math></inline-formula> Control for Discrete Time-Varying Systems With Randomly Occurring Nonlinearities and Fading Measurements
- Relationship Between Nash Equilibrium Strategies and <inline-formula> <tex-math notation="TeX">$H_{2}/H_{\infty}$</tex-math></inline-formula> Control of Stochastic Markov Jump Systems With Multiplicative Noise
- Input–Output Stability of Networked Control Systems With Stochastic Protocols and Channels
- Optimal state estimation for networked systems with random parameter matrices, correlated noises and delayed measurements
- Fault detection and isolation for networked control systems with finite frequency specifications
This page was built for publication: Observer-based \(\mathcal{H}_\infty\) control of networked systems with stochastic communication protocol: the finite-horizon case