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A comparative study of tonal acoustic features for a symbolic level music-to-score alignment

机译:符号级音乐与乐谱对齐的音调声学特征比较研究

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In this paper we review the acoustic features used for music-to-score alignment and study their influence on the performance in a challenging alignment task, where the audio data is polyphonic and may contain percussion. Furthermore, as we aim at using “real world” scores, we follow an approach which does exploit the rhythm information (considered unreliable) and test its robustness to score errors. We use a unified framework to handle different state-of-the-art features, and propose a simple way to exploit either a model of the feature values, or an audio synthesis of a musical score, in an audio-to-score alignment system. We confirm that chroma vectors drawn from representations using a logarithmic frequency scale are the most efficient features, and lead to a good precision, even with a simple alignment strategy. Robustness tests also show that the relative performance of the features do not depend on possible musical score degradations.
机译:在本文中,我们回顾了用于音乐到乐谱对齐的声学特征,并研究了它们在具有挑战性的对齐任务中对性能的影响,其中音频数据是复音的,可能包含打击乐。此外,由于我们的目标是使用“真实世界”乐谱,因此我们采用了一种确实利用节奏信息(被认为不可靠)并测试其对错误进行乐谱的鲁棒性的方法。我们使用一个统一的框架来处理不同的最新功能,并提出了一种简单的方法来在音频到分数的对齐系统中利用特征值的模型或乐谱的音频合成。我们确认,使用对数频率标度从表示中提取的色度矢量是最有效的功能,即使使用简单的对齐策略,也可以达到较高的精度。健壮性测试还表明,这些功能的相对性能不取决于乐谱的降低。

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