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Optimal feedback control framework suggests that changes in the preferred direction during BMI experiments may occur even with no adaptation

机译:最佳反馈控制框架表明,即使不进行适应性调整,BMI实验中首选方向的改变也可能发生

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Brain Machine Interfaces (BMIs) rely on the correlation between neural activity and movement kinematics. However, many characteristics of the neural activity change after switching from pole control to brain control. Of particular interest are changes in the preferred direction (PD), and whether they reflect adaptation to the BMI filter. Here we investigate changes in the PD of simulated neurons that encode signals that are relevant for state estimation and control with the framework of optimal feedback control (OFC). Simulated BMI experiments based on the OFC framework demonstrate that changes in the PD may occur even with no adaptation. Further theoretical and simulations indicate the conditions under which there is no change in the PD upon switching to brain control.. Insights gained from this research can be used to improve the design of BMI filter - not only to minimize reconstruction error during pole control, but also to endow the neurons with desired PDs in brain control.
机译:脑机接口(BMI)依赖于神经活动与运动学之间的相关性。但是,神经活动的许多特征在从极点控制切换到脑部控制后发生变化。特别令人关注的是首选方向(PD)的变化,以及它们是否反映了对BMI滤波器的适应性。在这里,我们研究了模拟神经元的PD的变化,这些信号编码的信号与状态反馈和最佳反馈控制(OFC)框架相关。基于OFC框架的模拟BMI实验表明,即使不进行调整,PD也会发生变化。进一步的理论和模拟表明在切换到脑部控制时PD不会发生变化的条件。从这项研究中获得的见识可用于改进BMI滤波器的设计-不仅可将极点控制期间的重建误差降至最低,而且还可以使神经元在大脑控制中具有所需的PD。

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