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A functional model and simulation of spinal motor pools and intrafascicular recordings of motoneuron activity in peripheral nerve

机译:脊髓运动池的功能模型和模拟以及周围神经运动神经元活动的束内记录

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摘要

Decoding motor intent from recorded neural signals is essential for the development of effective neural-controlled prostheses. To facilitate the development of online decoding algorithms we have developed a software platform to simulate neural motor signals recorded with peripheral nerve electrodes, such as longitudinal intrafascicular electrodes (LIFEs). The simulator uses stored motor intent signals to drive a pool of simulated motoneurons with various spike shapes, recruitment characteristics, and firing frequencies. Each electrode records a weighted sum of a subset of simulated motoneuron activity patterns. As designed, the simulator facilitates development of a suite of test scenarios that would not be possible with actual data sets because, unlike with actual recordings, in the simulator the individual contributions to the simulated composite recordings are known and can be methodically varied across a set of simulation runs. In this manner, the simulation tool is suitable for iterative development of real-time decoding algorithms prior to definitive evaluation in amputee subjects with implanted electrodes. The simulation tool was used to produce data sets that demonstrate its ability to capture some features of neural recordings that pose challenges for decoding algorithms.
机译:从记录的神经信号中解码运动意图对于开发有效的神经控制假体至关重要。为了促进在线解码算法的开发,我们开发了一个软件平台来模拟用周围神经电极(例如纵向束内电极(LIFE))记录的神经运动信号。该模拟器使用存储的电机意图信号来驱动具有各种尖峰形状,补充特征和发射频率的模拟运动神经元池。每个电极记录模拟运动神经元活动模式的子集的加权和。按照设计,模拟器可促进开发一组实际数据集无法实现的测试方案,因为与实际记录不同,模拟器中的模拟复合记录的各个贡献是已知的,并且可以在整个集合中有条不紊地变化模拟运行。以这种方式,该仿真工具适用于在对带有植入电极的截肢受试者进行最终评估之前,迭代开发实时解码算法。该仿真工具用于生成数据集,以证明其捕获神经记录的某些特征的能力,这些特征对解码算法构成了挑战。

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