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Noise reduction in functional near-infrared spectroscopy signals by independent component analysis

机译:通过独立分量分析降低功能性近红外光谱信号的噪声

摘要

Functional near-infrared spectroscopy (fNIRS) is used to detect concentration changes of oxyhemoglobin and deoxy-hemoglobin in the human brain. The main difficulty entailed in the analysis of fNIRS signals is the fact that the hemodynamic response to a specific neuronal activation is contaminated by physiological and instrument noises, motion artifacts, and other interferences. This paper proposes independent component analysis (ICA) as a means of identifying the original hemodynamic response in the presence of noises. The original hemodynamic response was reconstructed using the primary independent component (IC) and other, less-weighting-coefficient ICs. In order to generate experimental brain stimuli, arithmetic tasks were administered to eight volunteer subjects. The t-value of the reconstructed hemodynamic response was improved by using the ICs found in the measured data. The best t-value out of 16 low-pass-filtered signals was 37, and that of the reconstructed one was 51. Also, the average t-value of the eight subjects' reconstructed signals was 40, whereas that of all of their low-pass-filtered signals was only 20. Overall, the results showed the applicability of the ICA-based method to noise-contamination reduction in brain mapping.
机译:功能近红外光谱(fNIRS)用于检测人脑中氧合血红蛋白和脱氧血红蛋白的浓度变化。分析fNIRS信号所面临的主要困难是,对特定神经元激活的血液动力学反应受到生理和仪器噪声,运动伪影和其他干扰的污染。本文提出了独立成分分析(ICA)作为在存在噪声的情况下识别原始血液动力学反应的一种方法。使用主要独立成分(IC)和其他加权系数较小的IC重建了最初的血液动力学反应。为了产生实验性脑刺激,对八个志愿者受试者进行了算术任务。重建的血流动力学反应的t值通过使用测量数据中的IC得以改善。在16个低通滤波信号中,最佳t值是37,重建信号中的t值是51。此外,八名受试者重建信号的平均t值是40,而所有低信号的平均t值是40。经过通滤波的信号只有20个。总体而言,结果表明基于ICA的方法在减少脑部地图噪声污染方面具有适用性。

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