Noise Reduction in Functional Near-infrared Spectroscopy Signals by Independent Component Analysis
Overview
Biophysics
Affiliations
Functional near-infrared spectroscopy (fNIRS) is used to detect concentration changes of oxy-hemoglobin 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.
Huo C, Shao G, Chen T, Li W, Wang J, Xie H J Neuroeng Rehabil. 2024; 21(1):213.
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Bergmann T, Vakitbilir N, Gomez A, Islam A, Stein K, Sainbhi A Bioengineering (Basel). 2024; 11(9).
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Xing Z, Jin Z, Fang S, Gao X Sensors (Basel). 2024; 24(6).
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Bhutta M, Ali M, Zafar A, Kim K, Byun J, Lee S Front Comput Neurosci. 2024; 17:1286664.
PMID: 38328471 PMC: 10848249. DOI: 10.3389/fncom.2023.1286664.
Park J Brain Neurorehabil. 2023; 16(1):e6.
PMID: 37033006 PMC: 10079473. DOI: 10.12786/bn.2023.16.e6.