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Exploring Facial Biomarkers for Depression through Temporal Analysis of Action Units

Authors :
Parikh, Aditya
Sadeghi, Misha
Eskofier, Bjorn
Publication Year :
2024

Abstract

Depression is characterized by persistent sadness and loss of interest, significantly impairing daily functioning and now a widespread mental disorder. Traditional diagnostic methods rely on subjective assessments, necessitating objective approaches for accurate diagnosis. Our study investigates the use of facial action units (AUs) and emotions as biomarkers for depression. We analyzed facial expressions from video data of participants classified with or without depression. Our methodology involved detailed feature extraction, mean intensity comparisons of key AUs, and the application of time series classification models. Furthermore, we employed Principal Component Analysis (PCA) and various clustering algorithms to explore the variability in emotional expression patterns. Results indicate significant differences in the intensities of AUs associated with sadness and happiness between the groups, highlighting the potential of facial analysis in depression assessment.

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2407.13753
Document Type :
Working Paper