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Voice Quality Dimensions as Interpretable Primitives for Speaking Style for Atypical Speech and Affect

About

Perceptual voice quality dimensions describe key characteristics of atypical speech and other speech modulations. Here we develop and evaluate voice quality models for seven voice and speech dimensions (intelligibility, imprecise consonants, harsh voice, naturalness, monoloudness, monopitch, and breathiness). Probes were trained on the public Speech Accessibility (SAP) project dataset with 11,184 samples from 434 speakers, using embeddings from frozen pre-trained models as features. We found that our probes had both strong performance and strong generalization across speech elicitation categories in the SAP dataset. We further validated zero-shot performance on additional datasets, encompassing unseen languages and tasks: Italian atypical speech, English atypical speech, and affective speech. The strong zero-shot performance and the interpretability of results across an array of evaluations suggests the utility of using voice quality dimensions in speaking style-related tasks.

Jaya Narain, Vasudha Kowtha, Colin Lea, Lauren Tooley, Dianna Yee, Vikramjit Mitra, Zifang Huang, Miquel Espi Marques, Jon Huang, Carlos Avendano, Shirley Ren• 2025

Related benchmarks

TaskDatasetResultRank
Dysarthric speech severity assessmentNeuroVoz Cross-domain (test)
SRCC0.705
10
Dysarthric speech severity assessmentSAP In-domain (test)
SRCC0.531
10
Dysarthric speech severity assessmentEasyCall Cross-domain (test)
SRCC0.604
10
Dysarthric speech severity assessmentEWA-DB Cross-domain (test)
SRCC0.588
10
Dysarthric speech severity assessmentUASpeech Cross-domain (test)
SRCC0.927
10
Dysarthric speech severity assessmentDysArinVox Cross-domain (test)
SRCC0.279
10
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