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Improved predictive control approach to networked control systems based on quantization dependent Lyapunov function
DOI:10.1016/j.isatra.2018.07.045.png)
摘要
En 中文
This paper considers model predictive control (MPC) for the linear discrete-time systems in the presence of packet loss, quantization and actuator saturation. Compared with the previous work ([45]), this paper presents an improved networked MPC approach for networked control systems (NCSs) by applying the quantization dependent Lyapunov function (QDLF) method which leads to less conservative results. The additional improvement is made by placing the heavier weighting on the system corresponding to the actual linear feedback law and choosing the relative weighting on the actual and auxiliary feedback laws which further improves the control performance over the existing method. It is shown that the closed-loop stability is guaranteed and a quantized state-feedback controller is derived by solving the infinite horizon optimization problem. Moreover, this method is further extended to multiple-input case. A numerical example is given to illustrate the effectiveness of the proposed approach.
Keyword:
MPC
Packet loss
Quantization
Actuator saturation
NCSs
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期刊
IF:
6.5
论文数:
5.9K
被引数:
2.0W
机构
引用论文
Packetized Predictive Control of Stochastic Systems Over Bit-Rate Limited Channels With Packet Loss具有丢包的比特率有限信道上随机系统的分组化预测控制
Stability Analysis of Networked Control Systems Using a Switched Linear Systems Approach基于切换线性系统方法的网络控制系统稳定性分析
Model predictive control of linear systems over networks with data quantizations and packet losses具有数据量化和数据包丢失的网络上线性系统的模型预测控制
AUTOMATICA
IF5.9
An improved robust model predictive control design in the presence of actuator saturation
AUTOMATICA
IF5.9
Analysis and synthesis of networked control systems: A survey of recent advances and challenges
ISA TRANSACTIONS
IF6.5

