Please use this identifier to cite or link to this item: http://hdl.handle.net/1942/45676
Title: Time-normalization approach for fNIRS data during tasks with high variability in duration
Data Creator - person: Falivene, Anna
JOHNSON, Charlotte 
KLINGELS, Katrijn 
MEYNS, Pieter 
VERBECQUE, Evi 
Hallemans, Ann
Biffi, Emilia
Piazza, Catarina
Crippa, Alessandro
Data Creator - organization: Scientific Institute IRCCS E. Medea, 23842 Bosisio Parini, Italy
Research Group MOVANT, Department of Rehabilitation Sciences and Physiotherapy (REVAKI), University of Antwerp, 2610 Wilrijk, Belgium
Research Centre (REVAL), Faculty of Rehabilitation Sciences and Physiotherapy, Hasselt University, 3590 Diepenbeek, Belgium
Data Curator - person: Falivene, Anna
JOHNSON, Charlotte 
KLINGELS, Katrijn 
MEYNS, Pieter 
VERBECQUE, Evi 
Hallemans, Ann
Biffi, Emilia
Piazza, Catarina
Crippa, Alessandro
Data Curator - organization: Scientific Institute IRCCS E. Medea, 23842 Bosisio Parini, Italy
Research Group MOVANT, Department of Rehabilitation Sciences and Physiotherapy (REVAKI), University of Antwerp, 2610 Wilrijk, Belgium
Research Centre (REVAL), Faculty of Rehabilitation Sciences and Physiotherapy, Hasselt University, 3590 Diepenbeek, Belgium
Rights Holder - person: Falivene, Anna
JOHNSON, Charlotte 
KLINGELS, Katrijn 
MEYNS, Pieter 
VERBECQUE, Evi 
Hallemans, Ann
Biffi, Emilia
Piazza, Catarina
Crippa, Alessandra
Rights Holder - organization: Scientific Institute IRCCS E. Medea, 23842 Bosisio Parini, Italy
Research Group MOVANT, Department of Rehabilitation Sciences and Physiotherapy (REVAKI), University of Antwerp, 2610 Wilrijk, Belgium
Research Centre (REVAL), Faculty of Rehabilitation Sciences and Physiotherapy, Hasselt University, 3590 Diepenbeek, Belgium
Publisher: Zenodo
Issue Date: 2025
Abstract: Abstract Functional near-infrared spectroscopy (fNIRS) is particularly suitable for measuring brain activity during motor tasks, due to its portability and good motion tolerance. In such cases, the trials’ duration may vary depending on the experimental conditions or the participant’s response, therefore a comparison of hemodynamic responses across repetitions cannot be properly performed. In this work, we present a MATLAB (R2023a) function (TaskNorm.m) developed for time-normalizing fNIRS data recorded during trials with different durations. It is based on a spline interpolation method that rescales the time -axis to the percentage of the trial with a fixed number of samples. This allows us to successively average across repetitions to obtain the mean hemodynamic responses and complete the standard data processing. The algorithm was tested on eight subjects (four with developmental coordination disorder, age: 9.78 ± 0.30 and four typically developing children, age: 9.02 ± 0.30) performing three different tasks. The results show that the TaskNorm function works as expected, allowing both a comparison and averaging of the data across multiple repetitions. The performance of the function is independent of the task or the pre-processing pipeline applied. The proposed function is publicly available and importable into the HomER3 package (v1.72.0), representing a further step in the ongoing standardization process of fNIRS data analysis.
Research Discipline: Social sciences > Psychology and cognitive sciences > Biological and physiological psychology > Neuroimaging (05010303)
Keywords: data time-normalization;functional near-infrared spectroscopy;spline interpolation;self-paced tasks;MATLAB
DOI: 10.5281/zenodo.10124955
10.5281/zenodo.10043157
Link to publication/dataset: https://zenodo.org/doi/10.5281/zenodo.10043157
Source: Zenodo. 10.5281/zenodo.10124955 10.5281/zenodo.10043157 https://zenodo.org/doi/10.5281/zenodo.10043157
Publications related to the dataset: 10.3390/s25061768
License: Creative Commons Attribution 4.0 International (CC-BY-4.0)
Access Rights: Open Access
Version: v1
Category: DS
Type: Dataset
Appears in Collections:Datasets

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