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Pilot Study for Grip Force Prediction Using Neural Signals from Different Brain Regions

机译:不同脑区神经信号的抓地力预测试验研究

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摘要

The design of brain machine interfaces (BMI) has been improving over the past decade. Such improvements have led to advanced capability in terms of restoring the functionality of a paralyzed/amputated limb and producing fine controlled movements of a robotic arm and hand. However, there is still more to be invested towards producing advanced BMI features such as producing appropriate forces when gripping and carrying an object using an artificial limb. This feature requires direct supervision and control from the brain to produce accurate results. Toward this goal, this work investigates the processing of neural signals from four brain regions in a nonhuman primate to predict maximum grip force. The signals received from each of the primary motor (M1) cortex, primary somatosensory (S1) cortex, dorsal premotor (PmD) cortex, and ventral premotor (PmV) cortex are used to build regression models to predict the applied maximum grip force. Comparisons of model prediction results are presented. The relative prediction accuracy from all brain regions would assist in further investigation to build robust approaches for controlling the force values. The brain regions and their interactions could eventually be summed in a weighted manner to complete the targeted approach.
机译:脑机接口(BMI)的设计在过去十年中一直在改善。在恢复瘫痪/截肢肢体的功能方面,这种改进导致了先进的能力,并产生机器人手臂和手的细量运动。然而,仍然有更多的是产生高级BMI特征,例如在夹持和使用人造肢体抓住物体时产生适当的力。此功能需要直接监督和控制大脑以产生准确的结果。对于实现这一目标,这项工作调查了来自非人灵长类动物的四个脑区的神经信号的处理,以预测最大抓地力。从每个主电动机(M1)皮质,初级躯体病(S1)皮质,背部热球(PMD)皮质和腹侧热球(PMV)皮质中的信号用于构建回归模型以预测所施加的最大抓地力。提出了模型预测结果的比较。来自所有脑区的相对预测精度将有助于进一步调查以构建控制力值的鲁棒方法。大脑区域及其相互作用最终可以以加权方式总结以完成目标方法。

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