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Estimation of Locomotion Speed and Directions Changes to Control a Vehicle Using Neural Signals from the Motor Cortex of Rat

机译:利用大鼠运动皮层的神经信号估算控制车辆的运动速度和方向变化

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We have developed a brain-machine interface (BMI) in the form of a small vehicle, which we call the RatCar. In this system, we implanted wire electrodes in the motor cortices of rat''s brain to continuously record neural signals. We applied a linear model to estimate the locomotion state (e.g., speed and directions) of a rat using a weighted summation model for the neural firing rates. With this information, we then determined the approximate movement of a rat. Although the estimation is still imprecise, results suggest that our model is able to control the system to some degree. In this paper, we give an overview of our system and describe the methods used, which include continuous neural recording, spike detection and a discrimination algorithm, and a locomotion estimation model minimizes the square error of the locomotion speed and changes in direction
机译:我们已经开发了一种小型车辆形式的脑机接口(BMI),我们将其称为RatCar。在该系统中,我们将线电极植入大鼠大脑的运动皮层中,以连续记录神经信号。我们应用了线性模型来估计大鼠的运动状态(例如,速度和方向),并使用加权求和模型来计算神经放电率。有了这些信息,我们便确定了老鼠的大概运动。尽管估计仍不精确,但结果表明我们的模型能够在一定程度上控制系统。在本文中,我们对系统进行了概述并描述了所使用的方法,包括连续神经记录,峰值检测和判别算法,并且运动估计模型将运动速度和方向变化的平方误差最小化

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