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Alpha band functional connectivity correlates with the performance of brain–machine interfaces to decode real and imagined movements

机译:Alpha波段功能的连通性与脑机接口的性能相关可解码真实和想象的运动

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摘要

Brain signals recorded from the primary motor cortex (M1) are known to serve a significant role in coding the information brain–machine interfaces (BMIs) need to perform real and imagined movements, and also to form several functional networks with motor association areas. However, whether functional networks between M1 and other brain regions, such as these motor association areas, are related to the performance of BMIs is unclear. To examine the relationship between functional connectivity and performance of BMIs, we analyzed the correlation coefficient between performance of neural decoding and functional connectivity over the whole brain using magnetoencephalography. Ten healthy participants were instructed to execute or imagine three simple right upper limb movements. To decode the movement type, we extracted 40 virtual channels in the left M1 via the beam forming approach, and used them as a decoding feature. In addition, seed-based functional connectivities of activities in the alpha band during real and imagined movements were calculated using imaginary coherence. Seed voxels were set as the same virtual channels in M1. After calculating the imaginary coherence in individuals, the correlation coefficient between decoding accuracy and strength of imaginary coherence was calculated over the whole brain. The significant correlations were distributed mainly to motor association areas for both real and imagined movements. These regions largely overlapped with brain regions that had significant connectivity to M1. Our results suggest that use of the strength of functional connectivity between M1 and motor association areas has the potential to improve the performance of BMIs to perform real and imagined movements.
机译:众所周知,从初级运动皮层(M1)记录的脑信号在编码信息脑机接口(BMI)方面起着重要作用,这些信息需要执行真实和想象的运动,并与运动关联区域形成多个功能网络。但是,尚不清楚M1和其他大脑区域(例如这些运动关联区域)之间的功能网络是否与BMI的表现有关。为了检查BMI的功能连通性与性能之间的关系,我们使用磁脑图分析了整个大脑的神经解码性能与功能连通性之间的相关系数。十名健康的参与者被指示执行或想象三个简单的右上肢运动。为了解码运动类型,我们通过波束形成方法在左M1中提取了40个虚拟通道,并将它们用作解码功能。此外,使用假想相干性来计算真实运动和想象的运动过程中,α波段活动的基于种子的功能连通性。种子体素在M1中设置为相同的虚拟通道。在计算了个体的虚相干之后,计算了整个大脑的解码精度和虚相干强度之间的相关系数。显着的相关性主要分布在真实和想象的运动的运动关联区域。这些区域与与M1具有显着连通性的大脑区域在很大程度上重叠。我们的结果表明,利用M1和运动关联区域之间的功能连接强度可以改善BMI执行真实和想象的运动的性能。

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