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基于区间二型T-S模糊系统的压电迟滞特性建模 被引量:2
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作者 陈圣鑫 赵新龙 +1 位作者 苏强 苏良才 《压电与声光》 CAS 北大核心 2020年第6期843-847,853,共6页
为了辨识压电驱动器中固有的迟滞特性,提出了一种基于区间二型Takagi-Sugeno(T-S)模糊系统的建模方案。首先,引用垂直距离公式替换传统的误差计算公式,使聚类算法与所辨识的超平面结果直接相关联,并提出了改进的区间二型模糊C回归模型(F... 为了辨识压电驱动器中固有的迟滞特性,提出了一种基于区间二型Takagi-Sugeno(T-S)模糊系统的建模方案。首先,引用垂直距离公式替换传统的误差计算公式,使聚类算法与所辨识的超平面结果直接相关联,并提出了改进的区间二型模糊C回归模型(FCRM)聚类算法用于模糊空间的划分,提高了区间划分精度。其次,针对超球型高斯隶属度函数与超平面型聚类算法结构不匹配的问题,引入了与超平面相匹配的超平面隶属度函数完成模糊前件参数的辨识,并利用最小二乘法完成模糊后件参数的辨识。最后,利用上述方案完成了压电驱动器迟滞特性的建模。实验结果证明该方案是有效的。 展开更多
关键词 压电驱动器 迟滞非线性 Takagi-Sugeno(t-s)模糊系统 模糊C回归模型 区间二型模糊
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基于模糊学习观测器的一类具有时变时滞的Takagi-Sugeno模糊系统的鲁棒故障估计
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作者 盛光玉 刘姿君 +1 位作者 葛春婷 孙超 《动力系统与控制》 2024年第3期91-104,共14页
本文研究一类具有连续状态时变时滞、执行器故障和范数有界外部干扰的Takagi-Sugeno(T-S)模糊系统的鲁棒故障估计问题。利用H∞优化技术,构造了一种新颖的模糊学习观测器,实现了系统状态和执行器故障的同时估计。基于Lyapunov稳定性分... 本文研究一类具有连续状态时变时滞、执行器故障和范数有界外部干扰的Takagi-Sugeno(T-S)模糊系统的鲁棒故障估计问题。利用H∞优化技术,构造了一种新颖的模糊学习观测器,实现了系统状态和执行器故障的同时估计。基于Lyapunov稳定性分析方法,以一组线性矩阵不等式(LMIs)的解形式给出了误差动态系统的稳定性分析和一个保守性更小的时滞相关的充分条件。最后,通过一个动态模型的仿真结果说明了所提方法的有效性。 展开更多
关键词 模糊学习观测器 Takagi-Sugeno (t-s)模糊系统 时变时滞 线性矩阵不等式(LMIs)
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模糊时滞系统的记忆状态反馈控制
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作者 周坤 黄天民 阮艳丽 《电子科技大学学报》 EI CAS CSCD 北大核心 2019年第4期526-532,共7页
该文研究了Takagi-Sugeno (T-S)模糊时滞系统的稳定与镇定问题。首先,选择一个近期提出的基于辅助函数的积分不等式,以线性矩阵不等式(LMIs)形式给出了保守性较小的时滞依赖的稳定性准则。其次,结合Finsler引理,首次提出了基于前提不匹... 该文研究了Takagi-Sugeno (T-S)模糊时滞系统的稳定与镇定问题。首先,选择一个近期提出的基于辅助函数的积分不等式,以线性矩阵不等式(LMIs)形式给出了保守性较小的时滞依赖的稳定性准则。其次,结合Finsler引理,首次提出了基于前提不匹配技术的模糊记忆状态反馈控制器设计方法,该前提不匹配的记忆控制器不要求与模糊系统拥有相同的隶属函数和模糊规则数目。最后,给出两个仿真算例证明所提理论的先进性和有效性。 展开更多
关键词 基于辅助函数的积分不等式 线性矩阵不等式(LMIs) Finsler引理 前提不匹配 TAKAGI-SUGENO (t-s)模糊时滞系统
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A research on an energy-saving software for pumping units based on FNN intelligent control
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作者 丁宝 齐维贵 王凤平 《Journal of Harbin Institute of Technology(New Series)》 EI CAS 2004年第3期240-244,共5页
An energy-saving scheme for pumping units via intermission start-stop performance is proposed. Because of the complexity of the oil extraction process, Fuzzy Neural Network (FNN) intelligent control is adopted. The st... An energy-saving scheme for pumping units via intermission start-stop performance is proposed. Because of the complexity of the oil extraction process, Fuzzy Neural Network (FNN) intelligent control is adopted. The structure of the Takagi-Sugeno (T-S) fuzzy neural network model is introduced and modified. FNNs are trained with sample information from oil fields and expert knowledge. Finally, pumping unit energy-saving FNN software, which cuts down power costs substantially, is presented. 展开更多
关键词 rocker pumping unit t-s fuzzy system fuzzy neural network BP algorithm
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Output Consensus for Heterogeneous Nonlinear Multi-Agent Systems Based on T-S Fuzzy Model 被引量:3
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作者 LI Xiaolei LUO Xiaoyuan +1 位作者 LI Shaobao GUAN Xinping 《Journal of Systems Science & Complexity》 SCIE EI CSCD 2017年第5期1042-1060,共19页
In this paper, the output consensus problem of general heterogeneous nonlinear multi-agent systems subject to different disturbances is considered. A kind of Takagi-Sukeno fuzzy modeling method is used to describe the... In this paper, the output consensus problem of general heterogeneous nonlinear multi-agent systems subject to different disturbances is considered. A kind of Takagi-Sukeno fuzzy modeling method is used to describe the nonlinear agents' dynamics. Based on the model, a distributed fuzzy observer and controller are designed based on parallel distributed compensation scheme and internal reference models such that the heterogeneous nonlinear multi-agent systems can achieve output consensus. Then a necessary and sufficient condition is presented for the output consensus problem. And it is shown that the consensus trajectory of the global fuzzy model is determined by the network topology and the initial states of the internal reference models. Finally, some simulations are given to illustrate and verify the effectiveness of the proposed scheme. 展开更多
关键词 Heterogeneous nonlinear multi-agent system internal reference model output consensus t-s fuzzy model.
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Traffic Forecasting Model Based on Takagi-Sugeno Fuzzy Logical System
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作者 王维工 李征 程美玲 《Journal of Donghua University(English Edition)》 EI CAS 2005年第1期129-132,共4页
The local multiple regression fuzzy(LMRF)model based on Takagi-Sugeno fuzzy logical system and its application in traffic forecasting is proposed. Besides its prediction accuracy is testified and the model is proved m... The local multiple regression fuzzy(LMRF)model based on Takagi-Sugeno fuzzy logical system and its application in traffic forecasting is proposed. Besides its prediction accuracy is testified and the model is proved much better than conventional forecasting methods. According to the regional traffic system, the model perfectly states the complex non-linear relation of the traffic and the local social economy. The model also efficiently deals with the system lack of enough data. 展开更多
关键词 t-s model traffic forecasting LMRF model.
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