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Iterative joint dynamic brain mapping and neural activity modeling from electroencephalographic signals

机译:从脑电图信号迭代关节动态脑映射和神经活动模型

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A novel joint iterative dynamic inverse problem solution for brain mapping based on electroencephalographic (EEG) signals is presented. Proposed approach considers linear and nonlinear time-varying state space models of the brain as dynamic constraints in the solution of the dynamic inverse problem where the brain mapping and the neural activity model are estimated simultaneously from EEG signals. The method performance is evaluated in terms of standard error, projection error, and residual error for several SNRs by using simulated EEG signals. As a result, a considerable improvement over Low Resolution Tomography (LORETA) and Dynamic LORETA approaches is found.
机译:介绍了基于脑电图(EEG)信号的脑部映射的新颖性迭代动态逆问题解决方案。所提出的方法认为大脑的线性和非线性时变状态模型作为动态逆问题的解决方案中的动态约束,其中大脑映射和神经活动模型同时从EEG信号估计。通过使用模拟EEG信号,根据标准误差,投影误差,投影误差和剩余误差来评估方法性能。结果,发现了对低分辨率断层扫描(Loreta)和动态Loreta方法的相当大的改进。

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