DocumentCode :
1790698
Title :
A model-free approachto increasing the effect size of FNIRS data
Author :
Shah, Aamer ; Seghouane, Abd-Krim
Author_Institution :
ANU Coll. of Eng. & Comput. Sci., NICTA, Canberra, ACT, Australia
fYear :
2014
fDate :
June 29 2014-July 2 2014
Firstpage :
77
Lastpage :
80
Abstract :
Localizing brain activity in noisy functional near-infrared spectroscopy (fNIRS) data plays an important role when investigating task-related hemodynamics of the neuronal sites. We present a novel method for capturing drifts in the fNIRS data which increases the effect size of interest of the oxygenated (HbO) and deoxygenated (HbR) hemoglobin responses. Using linear least-squares, a consistent hemo-dynamic response function (HRF) of the fNIRS HbO/HbR response is estimated as a first-step that leads to an optimal estimate of the drift based on a wavelet thresholding technique. The de-drifted fNIRS responses are then obtained by removing the estimated drifts from the fNIRS time-series. Its performance is assessed using both simulated data and a real fNIRS data set obtained from a finger tapping task. The application results reveal that the proposed model-free method performs optimal de-drifting and increases the effect size of the fNIRS data.
Keywords :
biomedical MRI; haemodynamics; image segmentation; medical image processing; regression analysis; time series; wavelet transforms; FNIRS data; brain activity localization; deoxygenated hemoglobin responses; fNIRS HbO response; fNIRS HbR response; fNIRS time-series; finger tapping task; hemodynamic response function; linear least-squares; model-free approach; neuronal sites; noisy functional near-infrared spectroscopy data; oxygenated hemoglobin responses; task-related hemodynamics; wavelet thresholding technique; Conferences; Data models; Estimation; Hemodynamics; Signal processing; Spectroscopy; Time series analysis; consistent estimation; functional NIRS; optimal de-drifting; signal improvement;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Statistical Signal Processing (SSP), 2014 IEEE Workshop on
Conference_Location :
Gold Coast, VIC
Type :
conf
DOI :
10.1109/SSP.2014.6884579
Filename :
6884579
Link To Document :
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