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Unsupervised Learning of the Downbeat in Drum Patterns

机译:鼓模式下无心拍的无监督学习

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摘要

A system for the automatic determination of symbolic drum patterns along with the downbeat is presented. From an unlabeled database of over 20000 urban music songs, for each song a characteristic drum pattern of one measure length is extracted fully automatically. The 50 most frequently occurring patterns are identified. For each of the most frequently occurring patterns the downbeat is determined by investigating the cue of the drum track. An evaluation against ground truth annotations for the drum patterns is carried out, where an accuracy of 90% for the downbeat detection is achieved. Further, a listening test has been carried out, that verifies the ground truth annotations.
机译:提出了一种用于自动确定符号鼓模式以及下拍的系统。从超过2万首城市音乐歌曲的未标记数据库中,对于每首歌曲,将自动自动提取一个长度为1的特征性鼓模式。确定了50个最常见的模式。对于每个最频繁出现的模式,通过调查鼓音轨的提示来确定跳动。进行了针对鼓模式的地面真相注释的评估,从而实现了震荡检测的90%精度。此外,已经进行了听力测试,以验证地面真相注释。

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