A reliable and reproducible real-time access to sensorimotor rhythm with a small number of optically pumped magnetometers.

IF 3.8
Nikita Fedosov, Daria Medvedeva, Oleg Shevtsov, Alexei Ossadtchi
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引用次数: 0

Abstract

Objective.Recent advances in biomagnetic sensing have led to the development of compact, wearable devices capable of detecting weak magnetic fields generated by biological activity. Optically pumped magnetometers (OPMs) have shown significant promise in functional neuroimaging. Brain rhythms play a crucial role in diagnostics, cognitive research, and neurointerfaces. Here we demonstrate that a small number of OPMs can reliably capture sensorimotor rhythms (SMRs).Approach.We conducted movement execution and motor imagery (MI) experiments with nine participants in two distinct magnetically shielded rooms (MSRs), each equipped with different ambient field suppression systems. We used only 4 OPMs located above the sensorimotor region and standard common-spatial-patterns (CSPs) based processing to decode the real and imaginary movement intentions of our participants. We evaluated reproducibility of the CSP components' spectral profiles and assessed the decoding accuracy deterioration with reduction of OPM's count. We also assessed the influence of the magnetic field orientation on the decoding accuracy and implemented a real-time MI brain-computer interface (BCI) solution.Main results.Under optimal conditions, OPM sensors deliver informative signals suitable for practical MI BCI applications. Those subjects who participated in the experiments in both MSRs exhibit highly reproducible SMR spectral patterns across two different magnetically shielded environments. The magnetic field components with radial orientation yield higher decoding accuracy than their tangential counterparts. In some subjects we observed more than 80% of binary decoding accuracy using a single OPM sensor. Finally we demonstrate real-time performance of our system along with clearly pronounced and behaviorally relevant fluctuations of the SMR power.Significance.For the first time, we demonstrated reliable and reproducible tracking of SMR components using a small number of contactless OPM sensors during movement execution and MI. Our findings pave the way for more efficient post-stroke neurorehabilitation by enabling MI-based BCI solutions to accelerate functional recovery.

一个可靠的和可重复的实时访问与少量光泵磁强计的感觉运动节奏。
\textbf{目标。}生物磁传感的最新进展导致了紧凑的可穿戴设备的发展,这些设备能够检测由生物活动产生的弱磁场。光泵磁强计(OPMs)在功能神经成像方面显示出巨大的前景。脑节律在诊断、认知研究和神经接口中起着至关重要的作用。在这里,我们证明了少量的opm可以可靠地捕捉感觉运动节律(SMR)。\textbf{方法。}我们在两个不同的磁屏蔽室(MSR)中对9名参与者进行了真实运动和运动图像实验,每个房间都配备了不同的环境场抑制系统。我们仅使用位于感觉运动区域上方的3个opm和基于标准共同空间模式(CSP)的处理来解码参与者的真实和想象的运动意图。我们评估了CSP成分光谱轮廓的再现性,并评估了解码精度随着OPM计数的减少而下降。我们还评估了磁场方向对解码精度的影响,并实现了实时运动图像BCI解决方案。\textbf{主要结果。}在最佳条件下,OPM传感器提供适合实际运动图像脑机接口(BCI)应用的信息信号。在两种不同的磁屏蔽环境中参与实验的受试者表现出高度可重复的SMR光谱模式。径向磁场分量比切向磁场分量解码精度高。在一些科目中,我们观察到使用单个OPM传感器的二进制解码精度超过80%。最后,我们演示了系统的实时性能以及SMR功率的明显和行为相关的波动。\textbf{意义。}我们首次展示了在真实运动和运动图像中使用少量非接触式OPM传感器可靠且可重复地跟踪感觉运动节奏成分。我们的研究结果为更有效的脑卒中后神经康复铺平了道路,使基于运动图像的脑机接口解决方案能够加速功能恢复。
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