ArticleAlzheimer's & dementia (Amsterdam, Netherlands)
Acoustic speech features are associated with late-life depression and apathy symptoms: Preliminary findings.
Article in Alzheimer's & dementia (Amsterdam, Netherlands). The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 8 papers, 1 of them a synthesis that pooled it.
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Who cites it
8 citing papers in PubMed, 1 synthesis or guideline pooled it.
- Speech analysis for detecting depression in older adults: a systematic review.Frontiers in psychology · 2025Pooled it
- Validating objective and scalable speech markers of depression across two independent psychiatric cohorts.Annals of general psychiatry · 2026Article
- Voice and Speech in Atypical Parkinsonian Disorders.Movement disorders clinical practice · 2026Review
- Psychosocial Stress in the Chinese Community: Speech Analytics Through Linguistic and Acoustic Fusion Using Machine Learning.JMIR biomedical engineering · 2026Article
- From dysphoria to anhedonia: age-related shift in the link between cognitive and affective symptoms.The journals of gerontology. Series B, Psychological sciences and social sciences · 2026Article
- Longitudinal voice monitoring in a decentralized Bring Your Own Device trial for respiratory illness detection.NPJ digital medicine · 2025Article
- Objective measures of instrumental activities of daily living and neuropsychiatric symptoms in aging and early-stage Alzheimer's disease.Alzheimer's & dementia (Amsterdam, Netherlands)Article
- Acoustic speech features are associated with late-life depression and apathy symptoms: Preliminary findings.Alzheimer's & dementia (Amsterdam, Netherlands)Article
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5 authors.
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Abstract
backgroundLate-life depression (LLD) is a heterogenous disorder related to cognitive decline and neurodegenerative processes, raising a need for the development of novel biomarkers. We sought to provide preliminary evidence for acoustic speech signatures sensitive to LLD and their relationship to depressive dimensions.
methodsForty patients (24 female, aged 65-82 years) were assessed with the Geriatric Depression Scale (GDS). Vocal features were extracted from speech samples (reading a pre-written text) and tested as classifiers of LLD using random forest and XGBoost models. Post hoc analyses examined the relationship between these acoustic features and specific depressive dimensions.
resultsThe classification models demonstrated moderate discriminative ability for LLD with receiver operating characteristic = 0.78 for random forest and 0.84 for XGBoost in an out-of-sample testing set. The top classifying features were most strongly associated with the apathy dimension ( DISCUSSION: Acoustic vocal features that may support the diagnosis of LLD are preferentially associated with apathy. Highlights: The depressive dimensions in late-life depression (LLD) have different cognitive correlates, with apathy characterized by more pronounced cognitive impairment.Acoustic speech features can predict LLD. Using acoustic features, we were able to train a random forest model to predict LLD in a held-out sample.Acoustic speech features that predict LLD are preferentially associated with apathy. These results indicate a predominance of apathy in the vocal signatures of LLD, and suggest that the clinical heterogeneity of LLD should be considered in development of acoustic markers.
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