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Measuring Cerebral Activation From fNIRS Signals: An Approach Based on Compressive Sensing and Taylor–Fourier Model

机译:从fNIRS信号测量大脑激活:基于压感和泰勒-傅立叶模型的方法

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Functional near-infrared spectroscopy (fNIRS) is a noninvasive and portable neuroimaging technique that uses NIR light to monitor cerebral activity by the so-called haemodynamic responses (HRs). The measurement is challenging because of the presence of severe physiological noise, such as respiratory and vasomotor waves. In this paper, a novel technique for fNIRS signal denoising and HR estimation is described. The method relies on a joint application of compressed sensing theory principles and Taylor–Fourier modeling of nonstationary spectral components. It operates in the frequency domain and models physiological noise as a linear combination of sinusoidal tones, characterized in terms of frequency, amplitude, and initial phase. Algorithm performance is assessed over both synthetic and experimental data sets, and compared with that of two reference techniques from fNIRS literature.
机译:功能性近红外光谱(fNIRS)是一种非侵入性的便携式神经成像技术,使用NIR光通过所谓的血液动力学响应(HRs)监测大脑活动。由于存在严重的生理噪声,例如呼吸波和血管舒缩波,因此测量具有挑战性。在本文中,描述了一种用于fNIRS信号降噪和HR估计的新技术。该方法依赖于压缩感测理论原理和非平稳频谱分量的Taylor-Fourier建模的联合应用。它在频域中运行,并将生理噪声建模为正弦波音调的线性组合,以频率,幅度和初始相位为特征。通过综合和实验数据集评估算法性能,并将其与fNIRS文献中的两种参考技术进行比较。

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