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A Closed-Loop Brain Stimulation Control System Design Based on Brain-Machine Interface for Epilepsy

机译:基于脑机界面的闭路脑刺激控制系统设计

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In this study, a closed-loop brain stimulation control system scheme for epilepsy seizure abatement is designed by brain-machine interface (BMI) technique. In the controller design process, the practical parametric uncertainties involving cerebral blood flow, glucose metabolism, blood oxygen level dependence, and electromagnetic disturbances in signal control are considered. An appropriate transformation is introduced to express the system in regular form for design and analysis. Then, sufficient conditions are developed such that the sliding motion is asymptotically stable. Combining Caputo fractional order definition and neural network (NN), a finite time fractional order sliding mode (FFOSM) controller is designed to guarantee reachability of the sliding mode. The stability and reachability analysis of the closed-loop tracking control system gives the guideline of parameter selection, and simulation results based on comprehensive comparisons are carried out to demonstrate the effectiveness of proposed approach.
机译:在本研究中,脑机接口(BMI)技术设计了一种用于癫痫癫痫发作减排的闭环脑刺激控制系统方案。在控制器设计过程中,考虑了涉及脑血流,葡萄糖代谢,血氧水平依赖性和信号控制中电磁干扰的实际参数不确定性。引入适当的转化以以规则的形式表达系统以进行设计和分析。然后,开发了足够的条件,使得滑动运动是渐近的稳定性的。结合Caputo分数订单定义和神经网络(NN),有限时间分数级滑动模式(FFOSM)控制器旨在保证滑动模式的可达性。闭环跟踪控制系统的稳定性和可达性分析给出了参数选择的指导,并进行了基于综合比较的仿真结果,以证明所提出的方法的有效性。

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