VERSE1-CHORUS-VERSE2 STRUCTURE: A STACKED ENSEMBLE APPROACH FOR ENHANCED MUSIC EMOTION RECOGNITION

Verse1-Chorus-Verse2 Structure: A Stacked Ensemble Approach for Enhanced Music Emotion Recognition

Verse1-Chorus-Verse2 Structure: A Stacked Ensemble Approach for Enhanced Music Emotion Recognition

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In this study, we present a novel approach for music emotion recognition that utilizes a stacked ensemble of models integrating audio and lyric features within a structured song framework.Our methodology employs a sequence of six specialized base models, each designed to capture critical features from distinct song segments: verse1, chorus, and verse2.These models are integrated into a meta-learner, resulting joe moreira jiu jitsu in superior predictive performance, achieving an accuracy of 96.25%.A basic stacked ensemble model was also used in this study to independently run the audio and lyric features for each song segment.

The six-input stacked ensemble model surpasses the capabilities of models analyzing song parts in isolation.The pronounced enhancement underscores the importance of a bimodal approach in capturing the full spectrum of musical emotions.Furthermore, our research not only opens new avenues for studying musical emotions but also provides a foundational framework for future investigations into the complex emotional aspects whirlwind direct2 of music.

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