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. 2023 Sep 19;13(1):298.
doi: 10.1038/s41398-023-02594-0.

Relative importance of speech and voice features in the classification of schizophrenia and depression

Affiliations

Relative importance of speech and voice features in the classification of schizophrenia and depression

Mark Berardi et al. Transl Psychiatry. .

Abstract

Speech is a promising biomarker for schizophrenia spectrum disorder (SSD) and major depressive disorder (MDD). This proof of principle study investigates previously studied speech acoustics in combination with a novel application of voice pathology features as objective and reproducible classifiers for depression, schizophrenia, and healthy controls (HC). Speech and voice features for classification were calculated from recordings of picture descriptions from 240 speech samples (20 participants with SSD, 20 with MDD, and 20 HC each with 4 samples). Binary classification support vector machine (SVM) models classified the disorder groups and HC. For each feature, the permutation feature importance was calculated, and the top 25% most important features were used to compare differences between the disorder groups and HC including correlations between the important features and symptom severity scores. Multiple kernels for SVM were tested and the pairwise models with the best performing kernel (3-degree polynomial) were highly accurate for each classification: 0.947 for HC vs. SSD, 0.920 for HC vs. MDD, and 0.932 for SSD vs. MDD. The relatively most important features were measures of articulation coordination, number of pauses per minute, and speech variability. There were moderate correlations between important features and positive symptoms for SSD. The important features suggest that speech characteristics relating to psychomotor slowing, alogia, and flat affect differ between HC, SSD, and MDD.

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Conflict of interest statement

Tilo Kircher received unrestricted educational grants from Servier, Janssen, Recordati, Aristo, Otsuka, neuraxpharm. All other authors declare no conflict of interest and report no biomedical financial interests.

Figures

Fig. 1
Fig. 1. Comparison of the top 25% of features ranked by aggregate feature importance across all pairwise models with the 3-degree SVM polynomial kernel.
Feature importance was computed as the post hoc permutation feature importance. For each model, there were twenty participants per group (HC healthy controls, SSD schizophrenia spectrum disorder, MDD major depressive disorder) and four speech samples per participant.

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