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Автоматическая транскрипция музыки×Сегментация музыки×
ОбластьИзвлечение музыкальной информацииИзвлечение музыкальной информации
СемействоMachine learningMachine learning
Год появления20082001
Автор методаAnssi KlapuriMasataka Goto
ТипPolyphonic audio-to-symbolic conversionAudio structural analysis
Основополагающий источникKlapuri, A. (2008). Automatic music transcription as we know it today. Journal of New Music Research, 33(3), 323-337. DOI ↗Goto, M., & Hasegawa, Y. (2001). Automatic transcription of popular music audio. In Proceedings of the Fourth International Conference on Music Information Retrieval. link ↗
Другие названияmusic-to-notation conversion, score estimation, polyphonic transcriptionstructural segmentation, music structure analysis, section boundary detection
Связанные55
СводкаAutomatic music transcription is the task of converting audio recordings into symbolic music notation (e.g., scores with note pitch, onset, and duration). Formalized as a research problem by Klapuri (2008), it represents one of the most challenging tasks in music information retrieval. Transcription enables music education, composition analysis, and digital preservation. Modern systems, particularly those using deep learning for piano music (Hawthorne et al., 2019), have achieved significant progress but remain far from perfect on general polyphonic music.Music 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.
ScholarGateНабор данных
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ScholarGateСравнение методов: Automatic Music Transcription · Music Segmentation. Получено 2026-06-19 из https://scholargate.app/ru/compare