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Segmentacija glazbe×Prepoznavanje akorda×
PodručjePronalaženje glazbenih informacijaPronalaženje glazbenih informacija
ObiteljMachine learningMachine learning
Godina nastanka20012005
TvoracMasataka GotoChristopher Harte
VrstaAudio structural analysisHarmonic audio analysis
Temeljni izvorGoto, M., & Hasegawa, Y. (2001). Automatic transcription of popular music audio. In Proceedings of the Fourth International Conference on Music Information Retrieval. link ↗Harte, C., Sandler, M. B., Abdallah, S. A., & Gómez, E. (2005). Symbolic representation of musical chords: Proposed extensions to the HarmO ontology. In Proceedings of the International Society for Music Information Retrieval Conference. link ↗
Drugi nazivistructural segmentation, music structure analysis, section boundary detectionchord estimation, harmonic analysis, chord detection
Srodne55
SažetakMusic segmentation is the task of dividing a musical recording into distinct structural sections (e.g., verse, chorus, bridge, pre-chorus, outro). Introduced by Goto (2001), it identifies major structural boundaries and labels sections according to musical form. Segmentation is essential for music understanding, audio editing, and composition analysis. It enables higher-level tasks like cover song identification and song structure-aware music generation.Chord recognition is the task of automatically identifying the harmonic chords present in a musical recording and estimating when chord changes occur. Introduced formally by Harte et al. (2005), it is a cornerstone of music analysis and widely used in music education, cover song analysis, and musical structure understanding. Modern systems use deep learning to classify and sequence chords in real time.
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ScholarGateUsporedite metode: Music Segmentation · Chord Recognition. Preuzeto 2026-06-18 s https://scholargate.app/hr/compare