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Toward a visualized classifier for depression: characterization of hemodynamic patterns using time-domain fNIRS.

Overview

Authors: Cyrus Su Hui Ho1,2, Shujun Jing3, Zhifei Li3,4, Gabrielle Wann Nii Tay1, Rachael Rui Qi Loh3, Kenneth De Sheng Tong3, Jinyuan Wang3, Junyi Li4, E Du5, Nanguang Chen3,4
  1. Department of Psychological Medicine, Yong Loo Lin School of Medicine, National University of Singapore, Singapore, Singapore
  2. Department of Psychological Medicine, National University Hospital, Singapore, Singapore
  3. Department of Biomedical Engineering, National University of Singapore, Singapore, Singapore
  4. National University of Singapore (Suzhou) Research Institute, Suzhou, China
  5. School of Microelectronics, Shenzhen Institute of Information Technology, Shenzhen, Guangdong, China
Journal: Frontiers in psychiatry, volume 17, article 1724011
Dates: received 13 October 2025; accepted 9 February 2026; published online 3 March 2026
Type: Research article · Language: English
License: CC BY
Identifiers: DOI 10.3389/fpsyt.2026.1724011 · PMID 41853070 · PMCID PMC12992268 · OpenAlex W7133298907
Open access: gold, a free copy (OpenAlex)
Status: code verified
Categories: fNIRS (modality), human (organism), depression (population), clinical / translational (subfield)
Methods: Statistics, Machine learning, Spectral & time-frequency, Connectivity, fMRI & imaging
Keywords: brain activation, cerebral hemodynamics, depressive disorder, machine learning, time-domain fNIRS
Topic: Optical Imaging and Spectroscopy Techniques (Radiology, Nuclear Medicine and Imaging, Medicine), according to OpenAlex
Citations: cited by 1 paper (Europe PMC); 41 references in the paper

Abstract

Background: Major depressive disorder (MDD) is a chronic illness associated with considerable morbidity and is characterized by high rates of recurrence and relapse. Early and accurate identification of depressive symptoms results in better treatment outcomes. However, the current diagnostic process relies mainly on subjective clinical interviews, underscoring the need for cost-effective physiological markers.

Method: Increasing evidence suggests that alterations in neurovascular processes affect the cognitive and brain functions of individuals with MDD. This study introduced a time-domain functional near-infrared spectroscopy (TD-fNIRS) instrument and a test-retest protocol to characterize prefrontal hemodynamics in MDD. Utilizing a dataset of 27 patients with MDD and 27 age- and gender-matched healthy controls (HC), the study investigated differential hemodynamic patterns in the prefrontal cortex between MDD and HC through a visual analysis method, which included the separation of hemodynamic responses, feature extraction, and supervised classifiers.

Result: A novel feature combination, the 'Integral and Centroid of Activation' derived from task-rest HbO ratio, was identified as the most effective optical biomarker in distinguishing MDD from controls. Utilizing only two features, the linear discriminant analysis attained average accuracies of 75.1% ± 6.6% across five-fold cross-validation.

Conclusion: The results suggest that individuals with MDD exhibit a higher change in HbO relative to their initial HbO levels, indicating a greater oxygenation demand to support prefrontal cortex activation during speech and memory processes. This pilot study utilizing multichannel TD-fNIRS technology on human subjects provides new insights into replicable physiological features, potentially enabling objective measurement of the underlying neuropathological symptoms of MDD.

Reproduced under the paper's license (CC BY), from the paper cited above.

Code

No file of the authors' code could be read here: it is described below, and read at its source.

mathworks.com/matlabcentral/fileexchange

License: none: the authors keep all their rights
State: the link answers, verified on 27 September 2026
Evidence: the link answers
Software Heritage: not checked
Found in: “Data availability statement”
Not found: README, license file, CITATION.cff, environment file, tests, continuous integration, documentation
Availability: 2 checks, the latest on 27 September 2026: the link answers (HTTP 200)
  • 27 September 2026: the link answers (HTTP 200)
  • 27 September 2026: unreachable at the last attempt (HTTP 403)

The paper's code and data availability statement is in the Data section.

Tracing map

Proposed by the machine: these links were found in the paper and verified at the source, without human review. The map will receive a Zenodo DOI once one of the paper's authors has validated it with their ORCID.

What the map holds:

  • 1 repository of the authors' code, each at its verified commit, with its license and how the link was found in the paper;
  • 0 scripts, each with its path and the digest of its content;
  • no match between paragraphs and code yet;
  • neither the text of the paper nor the code itself.

Its JSON (tracing-map.json) is deposited on Zenodo with its DOI once the map is validated.

Data

No dataset and no data link were found in the paper.

Data availability statement

The raw data supporting the conclusions of this article will be made available by the authors, without undue reservation. The MATLAB code in this study are available at https://www.mathworks.com/matlabcentral/fileexchange/180528-characterizing-hemodynamic-pattern-in-depressionby-td-fnirs.

Reproduced under the paper's license (CC BY), from the paper cited above.

Versions

The history of this record: each version stored by the harvester or made by a correction of its authors or of the maintainers of its code, and what changed in its facts. The texts of the paper (its abstract, its availability statements) are not part of it; versions that changed only those are not listed.

Version 1, 30 September 2026: the first record

Recorded: type, language, journal, volume, pages, dates, 10 authors, 5 keywords, 3 funders, 38 references.

Cite

This paper

Ho, C. S. H., Jing, S., Li, Z., Tay, G. W. N., Loh, R. R. Q., Tong, K. D. S., Wang, J., Li, J., Du, E., & Chen, N. (2026). Toward a visualized classifier for depression: characterization of hemodynamic patterns using time-domain fNIRS. Frontiers in psychiatry, 17, 1724011. https://doi.org/10.3389/fpsyt.2026.1724011

BibTeX

@article{ho2026toward,
author = {Ho, Cyrus Su Hui and Jing, Shujun and Li, Zhifei and Tay, Gabrielle Wann Nii and Loh, Rachael Rui Qi and Tong, Kenneth De Sheng and Wang, Jinyuan and Li, Junyi and Du, E and Chen, Nanguang},
title = {{Toward a visualized classifier for depression: characterization of hemodynamic patterns using time-domain fNIRS}},
journal = {Frontiers in psychiatry},
year = {2026},
month = mar,
volume = {17},
pages = {1724011},
publisher = {Frontiers Media SA},
issn = {1664-0640},
doi = {10.3389/fpsyt.2026.1724011},
url = {https://doi.org/10.3389/fpsyt.2026.1724011},
pmid = {41853070},
pmcid = {PMC12992268}
}

RIS

TY - JOUR
AU - Ho, Cyrus Su Hui
AU - Jing, Shujun
AU - Li, Zhifei
AU - Tay, Gabrielle Wann Nii
AU - Loh, Rachael Rui Qi
AU - Tong, Kenneth De Sheng
AU - Wang, Jinyuan
AU - Li, Junyi
AU - Du, E
AU - Chen, Nanguang
TI - Toward a visualized classifier for depression: characterization of hemodynamic patterns using time-domain fNIRS
T2 - Frontiers in psychiatry
J2 - Front Psychiatry
PY - 2026
DA - 2026/03/03
VL - 17
SP - 1724011
SN - 1664-0640
PB - Frontiers Media SA
DO - 10.3389/fpsyt.2026.1724011
UR - https://doi.org/10.3389/fpsyt.2026.1724011
LA - en
ER -

CSL-JSON

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