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Event-related fast optical signal in a rapid object recognition task: improving detection by the Independent Component Analysis

机译:快速目标识别任务中与事件相关的快速光信号:通过独立分量分析改进检测

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摘要

Noninvasive recording of fast optical signals presumably reflecting neuronal activity is a challenging task because of a relatively low signal-to-noise ratio. To improve detection of those signals in rapid object recognition tasks, we used the Independent Component Analysis (ICA) to reduce “global interference” (heartbeat and contribution of superficial layers). We recorded optical signals from the left prefrontal cortex in 10 right-handed participants with a continuous-wave instrument (DYNOT, NIRx, Brooklyn, NY). Visual stimuli were pictures of urban, landscape and seashore scenes with various vehicles as targets (target-to-non-target ratio 1:6) presented at ISI = 166 ms or 250 ms. Subjects mentally counted targets. Data were filtered at 2–30 Hz and artifactual components were identified visually (for heartbeat) and using the ICA weight matrix (for superficial layers). Optical signals were restored from the ICA components with artifactual components removed and then averaged over target and non-target epochs. After ICA processing, the event-related response was detected in 70–100% of subjects. The refined signal showed a significant decrease from baseline within 200–300 ms after targets and a slight increase after non-targets. The temporal profile of the optical signal corresponded well to the profile of a “differential ERP response”, the difference between targets and non-targets which peaks at 200 ms in similar object detection tasks. These results demonstrate that the detection of fast optical responses with continuous-wave instruments can be improved through the ICA method capable to remove noise, global interference and the activity of superficial layers. Fast optical signals may provide further information on brain processing during higher-order cognitive tasks such as rapid categorization of objects.
机译:快速的光学信号的无创记录可能反映神经元的活动,因为相对较低的信噪比,是一项艰巨的任务。为了改善快速目标识别任务中对这些信号的检测,我们使用了独立分量分析(ICA)来减少“全局干扰”(心跳和表​​层的贡献)。我们用连续波仪器(DYNOT,NIRx,布鲁克林,纽约)在10位惯用右手的参与者中记录了来自左前额叶皮层的光信号。视觉刺激是在ISI = 166 ms或250 ms时,以各种车辆作为目标(目标与非目标的比例为1:6)的城市,风景和海滨场景的图片。受试者的精神目标。数据以2–30 Hz进行滤波,并通过ICA权重矩阵(用于表层)在视觉上识别人为成分(用于心跳)。从ICA分量中恢复光信号,去除人为分量,然后在目标和非目标时期平均。经过ICA处理后,在70-100%的受试者中检测到了事件相关的反应。精确信号在目标后200-300毫秒内显示出比基线显着下降,在非目标后略有上升。光信号的时间轮廓与“差异性ERP响应”的轮廓非常吻合,在相似的对象检测任务中,目标和非目标之间的差异在200毫秒达到峰值。这些结果表明,通过能够消除噪声,整体干扰和表层活性的ICA方法,可以改进连续波仪器对快速光学响应的​​检测。快速的光学信号可以在诸如认知对象的快速分类之类的更高阶认知任务期间提供有关大脑处理的更多信息。

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