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首页> 外文期刊>The European Journal of Neuroscience >Encoding of kinetic and kinematic movement parameters in the sensorimotor cortex: A Brain-Computer Interface perspective
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Encoding of kinetic and kinematic movement parameters in the sensorimotor cortex: A Brain-Computer Interface perspective

机译:传感器皮层中的动力学运动参数的编码:脑电脑界面的视角

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For severely paralyzed people, Brain-Computer Interfaces (BCIs) can potentially replace lost motor output and provide a brain-based control signal for augmentative and alternative communication devices or neuroprosthetics. Many BCIs focus on neuronal signals acquired from the hand area of the sensorimotor cortex, employing changes in the patterns of neuronal firing or spectral power associated with one or more types of hand movement. Hand and finger movement can be described by two groups of movement features, namely kinematics (spatial and motion aspects) and kinetics (muscles and forces). Despite extensive primate and human research, it is not fully understood how these features are represented in the SMC and how they lead to the appropriate movement. Yet, the available information may provide insight into which features are most suitable for BCI control. To that purpose, the current paper provides an in-depth review on the movement features encoded in the SMC. Even though there is no consensus on how exactly the SMC generates movement, we conclude that some parameters are well represented in the SMC and can be accurately used for BCI control with discrete as well as continuous feedback. However, the vast evidence also suggests that movement should be interpreted as a combination of multiple parameters rather than isolated ones, pleading for further exploration of sensorimotor control models for accurate BCI control.
机译:对于严重瘫痪的人来说,脑 - 计算机接口(BCI)可能会替换丢失的电动机输出,并为增强和替代通信设备或神经调节剂提供基于脑的控制信号。许多BCIS专注于从感觉电机皮质的手区域获取的神经元信号,采用与一个或多种手动移动相关的神经元射击或光谱功率模式的变化。手和手指运动可以通过两组运动特征描述,即运动学(空间和运动方面)和动力学(肌肉和力)。尽管具有广泛的灵长类动物和人类研究,但尚未完全明白这些功能在SMC中是如何表示的,以及它们如何导致适当的运动。然而,可用信息可以提供深入了解哪些功能最适合BCI控制。为此目的,目前的论文对SMC编码的运动功能提供了深入的综述。尽管SMC生成运动的究竟没有达成共识,但我们得出结论,一些参数在SMC中很好地表示,可以准确地使用离散和连续反馈的BCI控制。然而,庞大的证据还表明,运动应该被解释为多个参数的组合而不是隔离的,恳求进一步探索感觉电流控制模型以准确BCI控制。

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