» Articles » PMID: 29430471

Motion Artifact Detection and Correction in Functional Near-infrared Spectroscopy: a New Hybrid Method Based on Spline Interpolation Method and Savitzky-Golay Filtering

Overview
Journal Neurophotonics
Date 2018 Feb 13
PMID 29430471
Citations 71
Authors
Affiliations
Soon will be listed here.
Abstract

Motion artifact contamination in near-infrared spectroscopy (NIRS) data has become an important challenge in realizing the full potential of NIRS for real-life applications. Various motion correction algorithms have been used to alleviate the effect of motion artifacts on the estimation of the hemodynamic response function. While smoothing methods, such as wavelet filtering, are excellent in removing motion-induced sharp spikes, the baseline shifts in the signal remain after this type of filtering. Methods, such as spline interpolation, on the other hand, can properly correct baseline shifts; however, they leave residual high-frequency spikes. We propose a hybrid method that takes advantage of different correction algorithms. This method first identifies the baseline shifts and corrects them using a spline interpolation method or targeted principal component analysis. The remaining spikes, on the other hand, are corrected by smoothing methods: Savitzky-Golay (SG) filtering or robust locally weighted regression and smoothing. We have compared our new approach with the existing correction algorithms in terms of hemodynamic response function estimation using the following metrics: mean-squared error, peak-to-peak error ([Formula: see text]), Pearson's correlation ([Formula: see text]), and the area under the receiver operator characteristic curve. We found that spline-SG hybrid method provides reasonable improvements in all these metrics with a relatively short computational time. The dataset and the code used in this study are made available online for the use of all interested researchers.

Citing Articles

A free association semantic task for fNIRS-based perinatal depression assessment.

Chen D, Yang X, Liang Y, Huang C, Zhang S, Li Y Front Neurol. 2025; 15:1491923.

PMID: 39882372 PMC: 11778336. DOI: 10.3389/fneur.2024.1491923.


Accuracy deficits during robotic time-constrained reaching are related to altered prefrontal cortex activity in children with cerebral palsy.

Khan O, Singh T, Barany D, Modlesky C J Neuroeng Rehabil. 2024; 21(1):216.

PMID: 39702205 PMC: 11661058. DOI: 10.1186/s12984-024-01502-x.


Near-Infrared Spectroscopy for Neonatal Sleep Classification.

Hakimi N, Arasteh E, Zahn M, Horschig J, Colier W, Dudink J Sensors (Basel). 2024; 24(21).

PMID: 39517901 PMC: 11548375. DOI: 10.3390/s24217004.


Effect of habitual physical activity on motor performance and prefrontal cortex activity during implicit motor learning.

Tan F, Teo W, Leuk J, Goodwill A PeerJ. 2024; 12:e18217.

PMID: 39512306 PMC: 11542559. DOI: 10.7717/peerj.18217.


Disentangling the impact of motion artifact correction algorithms on functional near-infrared spectroscopy-based brain network analysis.

Guan S, Li Y, Luo Y, Niu H, Gao Y, Yang D Neurophotonics. 2024; 11(4):045006.

PMID: 39444555 PMC: 11498316. DOI: 10.1117/1.NPh.11.4.045006.


References
1.
Diamond S, Huppert T, Kolehmainen V, Franceschini M, Kaipio J, Arridge S . Dynamic physiological modeling for functional diffuse optical tomography. Neuroimage. 2005; 30(1):88-101. PMC: 2670202. DOI: 10.1016/j.neuroimage.2005.09.016. View

2.
Delpy D, Cope M, van der Zee P, Arridge S, Wray S, Wyatt J . Estimation of optical pathlength through tissue from direct time of flight measurement. Phys Med Biol. 1988; 33(12):1433-42. DOI: 10.1088/0031-9155/33/12/008. View

3.
Cope M, Delpy D . System for long-term measurement of cerebral blood and tissue oxygenation on newborn infants by near infra-red transillumination. Med Biol Eng Comput. 1988; 26(3):289-94. DOI: 10.1007/BF02447083. View

4.
Tuscan L, Herbert J, Forman E, Juarascio A, Izzetoglu M, Schultheis M . Exploring frontal asymmetry using functional near-infrared spectroscopy: a preliminary study of the effects of social anxiety during interaction and performance tasks. Brain Imaging Behav. 2012; 7(2):140-53. DOI: 10.1007/s11682-012-9206-z. View

5.
Chiarelli A, Maclin E, Fabiani M, Gratton G . A kurtosis-based wavelet algorithm for motion artifact correction of fNIRS data. Neuroimage. 2015; 112:128-137. PMC: 4408240. DOI: 10.1016/j.neuroimage.2015.02.057. View