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Распознавание инструментов×Сегментация музыки×
ОбластьИзвлечение музыкальной информацииИзвлечение музыкальной информации
СемействоMachine learningMachine learning
Год появления20052001
Автор методаAntti EronenMasataka Goto
ТипTimbre-based audio classificationAudio structural analysis
Основополагающий источникEronen, A., Peltonen, V., Tuomi, J., Klapuri, A., Fagerlund, S., Sorsa, T., & Lorho, G. (2005). Audio-based context recognition. IEEE Transactions on Audio, Speech, and Language Processing, 14(1), 321-329. 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 названияinstrument classification, timbre identification, instrument detectionstructural segmentation, music structure analysis, section boundary detection
Связанные55
СводкаInstrument recognition is the task of automatically identifying which musical instruments are present in an audio recording. Formalized by Eronen et al. (2005), it addresses timbre—the tonal quality distinguishing one instrument from another. Instrument recognition is essential for music analysis, transcription, automatic indexing, and music education. It remains challenging in polyphonic contexts but has achieved good accuracy in solo and sparse accompaniment scenarios.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: Instrument Recognition · Music Segmentation. Получено 2026-06-18 из https://scholargate.app/ru/compare