首页> 外文会议>International IEEE/EMBS Conference on Neural Engineering >Mixing decoded cursor velocity and position from an offline Kalman filter improves cursor control in people with tetraplegia
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Mixing decoded cursor velocity and position from an offline Kalman filter improves cursor control in people with tetraplegia

机译:混合来自离线Kalman滤波器的解码光标速度和位置可改善四肢瘫痪患者的光标控制

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Kalman filtering is a common method to decode neural signals from the motor cortex. In clinical research investigating the use of intracortical brain computer interfaces (iBCIs), the technique enabled people with tetraplegia to control assistive devices such as a computer or robotic arm directly from their neural activity. For reaching movements, the Kalman filter typically estimates the instantaneous endpoint velocity of the control device. Here, we analyzed attempted arm/hand movements by people with tetraplegia to control a cursor on a computer screen to reach several circular targets. A standard velocity Kalman filter is enhanced to additionally decode for the cursor's position. We then mix decoded velocity and position to generate cursor movement commands. We analyzed data, offline, from two participants across six sessions. Root mean squared error between the actual and estimated cursor trajectory improved by 12.2 ±10.5% (pairwise t-test, p<0.05) as compared to a standard velocity Kalman filter. The findings suggest that simultaneously decoding for intended velocity and position and using them both to generate movement commands can improve the performance of iBCIs.
机译:卡尔曼滤波是解码来自运动皮质的神经信号的常用方法。在研究使用皮质内脑计算机接口(iBCI)的临床研究中,该技术使四肢瘫痪的人可以直接从神经活动控制辅助设备,例如计算机或机械臂。为了达到运动,卡尔曼滤波器通常估算控制设备的瞬时端点速度。在这里,我们分析了四肢瘫痪患者尝试进行的手臂/手部动作,以控制计算机屏幕上的光标到达多个圆形目标。标准速度卡尔曼滤波器得到增强,可以对光标的位置进行附加解码。然后,我们将解码后的速度和位置混合在一起以生成光标移动命令。我们在六个会话中离线分析了两名参与者的数据。与标准速度卡尔曼滤波器相比,实际和估计的光标轨迹之间的均方根误差提高了12.2±10.5%(成对t检验,p <0.05)。研究结果表明,同时解码预期的速度和位置并使用它们两者来生成运动命令可以提高iBCI的性能。

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