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Recasting brain-machine interface design from a physical control system perspective

机译:从物理控制系统的角度重塑脑机接口设计

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With the goal of improving the quality of life for people suffering from various motor control disorders, brain-machine interfaces provide direct neural control of prosthetic devices by translating neural signals into control signals. These systems act by reading motor intent signals directly from the brain and using them to control, for example, the movement of a cursor on a computer screen. Over the past two decades, much attention has been devoted to the decoding problem: how should recorded neural activity be translated into the movement of the cursor? Most approaches have focused on this problem from an estimation standpoint, i.e., decoders are designed to return the best estimate of motor intent possible, under various sets of assumptions about how the recorded neural signals represent motor intent. Here we recast the decoder design problem from a physical control system perspective, and investigate how various classes of decoders lead to different types of physical systems for the subject to control. This framework leads to new interpretations of why certain types of decoders have been shown to perform better than others. These results have implications for understanding how motor neurons are recruited to perform various tasks, and may lend insight into the brain's ability to conceptualize artificial systems.
机译:为了改善患有各种运动控制障碍的人们的生活质量,脑机接口通过将神经信号转换为控制信号来提供对假体设备的直接神经控制。这些系统通过直接从大脑读取运动意图信号并使用它们来控制(例如)计算机屏幕上的光标移动来发挥作用。在过去的二十年中,人们对解码问题投入了很多注意力:如何将记录的神经活动转化为光标的运动?从估计的角度来看,大多数方法都集中在这个问题上,即,在关于记录的神经信号如何表示运动意图的各种假设集合中,解码器被设计为返回可能的运动意图的最佳估计。在这里,我们从物理控制系统的角度重述了解码器的设计问题,并研究了各种类型的解码器如何导致针对控制对象的不同类型的物理系统。该框架导致对为什么某些类型的解码器表现出比其他类型更好的解释。这些结果对于理解如何招募运动神经元执行各种任务具有重要意义,并且可能有助于深入了解大脑概念化人工系统的能力。

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