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Identifying appropriate feature to distinguish between resting and active condition from FNIRS

机译:识别适当的功能以区分FNIRS的静止状态和活动状态

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In this paper, a series of numerical analysis is performed on the functional near infrared spectroscopy (FNIRS) data to find out the appropriate feature for investigating the hemodynamic response of human brain. The main objective of this work is to identify the exact feature from FNIR data which can distinguish the resting state and active state of brain. We have analyzed various types of statistical parameters and shown that the effect size is the only differential tools for FNIR analysis to identify the specific channel of activation than the other parameter like average, standard deviation, and total average change in blood volume. Through this research work, two types of effect size from the FNIR data are determined and have shown their characteristics in every detector channel. According to the feature of calculated effect size, it was seen that channel 1 and channel 2 have strong eligibility to differentiate the active and resting condition of brain. Therefore, this study proposes to use channel 1 and channel 2 with a single laser source to design a portable FNIR device to monitor the patient is either in resting or active condition.
机译:在本文中,对功能近红外光谱(FNIRS)数据进行了一系列数值分析,以找出研究人脑血液动力学反应的合适特征。这项工作的主要目的是从FNIR数据中识别出确切的特征,从而可以区分大脑的静止状态和活动状态。我们分析了各种类型的统计参数,结果表明,与其他参数(例如平均值,标准偏差和总血容量的平均变化)相比,效应大小是FNIR分析识别激活特定通道的唯一差异工具。通过这项研究工作,从FNIR数据中确定了两种类型的效应大小,并在每个检测器通道中显示了它们的特性。根据计算出的效应大小的特征,可以看出通道1和通道2具有较强的区分大脑活动和休息状态的资格。因此,这项研究建议将通道1和通道2与单个激光源一起使用,以设计便携式FNIR设备,以监视患者处于静止状态还是活动状态。

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