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A novel robust predictive control system over imperfect networks

机译:一种不完善网络的新型鲁棒预测控制系统

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摘要

This paper aims to study on feedback control for a networked system with both uncertain delays, packet dropouts and disturbances. Here, a so-called robust predictive control (RPC) approach is designed as follows: 1- delays and packet dropouts are accurately detected online by a network problem detector (NPD); 2- a so-called PI-based neural network grey model (PINNGM) is developed in a general form for a capable of forecasting accurately in advance the network problems and the effects of disturbances on the system performance; 3- using the PINNGM outputs, a small adaptive buffer (SAB) is optimally generated on the remote side to deal with the large delays and/or packet dropouts and, therefore, simplify the control design; 4- based on the PINNGM and SAB, an adaptive sampling-based integral state feedback controller (ASISFC) is simply constructed to compensate the small delays and disturbances. Thus, the steady-state control performance is achieved with fast response, high adaptability and robustness. Case studies are finally provided to evaluate the effectiveness of the proposed approach.
机译:本文旨在研究具有不确定延迟,数据包丢失和干扰的网络系统的反馈控制。这里,所谓的鲁棒预测控制(RPC)方法设计如下:1-网络问题检测器(NPD)在线准确地检测延迟和数据包丢失; 2-以通用形式开发了所谓的基于PI的神经网络灰色模型(PINNGM),以便能够提前准确预测网络问题和干扰对系统性能的影响; 3-利用PINNGM输出,在远端最佳地产生一个小的自适应缓冲器(SAB),以处理大的延迟和/或分组丢失,因此简化了控制设计; 4-基于PINNGM和SAB,可轻松构建基于自适应采样的积分状态反馈控制器(ASISFC),以补偿较小的延迟和干扰。因此,具有快速响应,高适应性和鲁棒性的稳态控制性能。最后提供案例研究以评估所提出方法的有效性。

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