Related Experiment Videos
Dual-branch hierarchical fusion network for voice-based classification of type 2 diabetes mellitus using multi-vowel
Pengxu Jiang1, Wenke Zhang2, Aiqin Li1
1Central Hospital of Kaifeng, Kaifeng, China.
Problem:
While voice-based analysis has emerged as a potential non-invasive approach for exploring acoustic alterations associated with Type 2 Diabetes Mellitus (T2DM), current approaches often fail to fully capture disease-relevant vocal patterns due to simplified recording protocols and insufficient feature modeling.
Aim:
This study aims to investigate the feasibility of voice-based classification of T2DM using a multi-feature fusion framework, leveraging sustained vowel phonations and integrating multiple acoustic feature types to enhance diagnostic performance.
Methods:
Voice recordings were collected from 378 participants, including T2DM patients and healthy controls. Each participant pronounced six Mandarin vowels, from which acoustic features-including Mel-frequency cepstral coefficients (MFCCs), glottal parameters, and eGeMAPS descriptors-were extracted. Neural networks, including convolutional and deep architectures, were applied to capture pathology-relevant segments. Vowel-level fusion modules aggregated features across vowels, and an attention-based hierarchical fusion mechanism combined the three feature types, adaptively emphasizing features most relevant to T2DM.
Results:
The proposed dual-branch hierarchical fusion model achieved 80.48% detection accuracy.
Conclusion:
These results suggest that sustained vowel phonations contain potentially informative acoustic patterns associated with T2DM status. However, further validation using independent cohorts is required before clinical application.
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