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A novel observer design method for neural mass models

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【作者】 刘仙苗东凯高庆徐式蕴

【Author】 Liu Xian;Miao Dong-Kai;Gao Qing;Xu Shi-Yun;Key Laboratory of Industrial Computer Control Engineering of Hebei Province,Institute of Electrical Engineering,Yanshan University;China Electric Power Research Institute;

【机构】 Key Laboratory of Industrial Computer Control Engineering of Hebei Province,Institute of Electrical Engineering,Yanshan UniversityChina Electric Power Research Institute

【摘要】 Neural mass models can simulate the generation of electroencephalography(EEG) signals with different rhythms,and therefore the observation of the states of these models plays a significant role in brain research. The structure of neural mass models is special in that they can be expressed as Lurie systems. The developed techniques in Lurie system theory are applicable to these models. We here provide a new observer design method for neural mass models by transforming these models and the corresponding error systems into nonlinear systems with Lurie form. The purpose is to establish appropriate conditions which ensure the convergence of the estimation error. The effectiveness of the proposed method is illustrated by numerical simulations.

【Abstract】 Neural mass models can simulate the generation of electroencephalography(EEG) signals with different rhythms,and therefore the observation of the states of these models plays a significant role in brain research. The structure of neural mass models is special in that they can be expressed as Lurie systems. The developed techniques in Lurie system theory are applicable to these models. We here provide a new observer design method for neural mass models by transforming these models and the corresponding error systems into nonlinear systems with Lurie form. The purpose is to establish appropriate conditions which ensure the convergence of the estimation error. The effectiveness of the proposed method is illustrated by numerical simulations.

【基金】 Project supported by the National Natural Science Foundation of China(Grant Nos.61473245,61004050,and 51207144)
  • 【文献出处】 Chinese Physics B ,中国物理B , 编辑部邮箱 ,2015年09期
  • 【分类号】R741.04;TN911.6
  • 【被引频次】1
  • 【下载频次】50
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