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Neural population partitioning and a concurrent brain-machine interface for sequential motor function

机译:神经人口分区和并行运动功能的并发脑机接口

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摘要

Although brain-machine interfaces (BMIs) have focused largely on performing single-targeted movements, many natural tasks involve planning a complete sequence of such movements before execution. For these tasks, a BMI that can concurrently decode the full planned sequence before its execution may also consider the higher-level goal of the task to reformulate and perform it more effectively. Using population-wide modeling, we discovered two distinct subpopulations of neurons in the rhesus monkey premotor cortex that allow two planned targets of a sequential movement to be simultaneously held in working memory without degradation. Such marked stability occurred because each subpopulation encoded either only currently held or only newly added target information irrespective of the exact sequence. On the basis of these findings, we developed a BMI that concurrently decodes a full motor sequence in advance of movement and can then accurately execute it as desired.
机译:尽管脑机接口(BMI)主要集中于执行单目标运动,但是许多自然任务涉及在执行之前计划此类运动的完整序列。对于这些任务,可以在执行之前同时解码完整计划序列的BMI也可以考虑任务的更高级别目标,以重新制定和更有效地执行该任务。使用总体模型,我们在恒河猴运动前皮层中发现了两个不同的神经元亚群,这些亚群允许两个计划的连续运动目标同时保留在工作记忆中而不会降解。之所以会出现这种明显的稳定性,是因为每个子种群都仅编码当前持有的或仅添加了新添加的目标信息,而与确切的序列无关。基于这些发现,我们开发了一种BMI,它可以在运动之前同时解码完整的电机序列,然后可以根据需要准确地执行它。

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