Optimization of Vocal Teaching Empowered by AI A Comprehensive Study on Quantitative Evaluation and Personalized Guidance System for Singing Skills Based on Voiceprint Feature Extraction

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Y. Z. Wei

Abstract

The integration of artificial intelligence into vocal education provides new opportunities for overcoming limitations associated with subjective assessment and insufficient personalized guidance. This study proposes an AI-enabled vocal teaching framework based on voiceprint feature extraction and intelligent evaluation. Acoustic features including pitch, timbre, rhythm, and spectral characteristics are extracted through a multi-stage signal-processing pipeline, while machine-learning models are employed to establish quantitative singing-skill evaluation mechanisms. Based on diagnostic results, a personalized guidance module generates adaptive training recommendations for individual learners. Experimental analysis demonstrates that the proposed framework effectively improves evaluation consistency, enhances training efficiency, and supports individualized skill development. The study contributes to intelligent vocal education and provides methodological references for speech signal processing, acoustic pattern recognition, and intelligent human–computer interaction systems.

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How to Cite
Wei, Y. Z. (2026). Optimization of Vocal Teaching Empowered by AI A Comprehensive Study on Quantitative Evaluation and Personalized Guidance System for Singing Skills Based on Voiceprint Feature Extraction. Advanced Electromagnetics, 15(3), 3394–3403. https://doi.org/10.7716/aem.v15i3.3406
Section
Research Articles

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