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Towards Complete Polyphonic Music Transcription: Integrating Multi-Pitch Detection and Rhythm Quantization

机译:迈向完整的和弦音乐转录:集成多音高检测和节奏量化

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Most work on automatic transcription produces “piano roll” data with no musical interpretation of the rhythm or pitches. We present a polyphonic transcription method that converts a music audio signal into a human-readable musical score, by integrating multi-pitch detection and rhythm quantization methods. This integration is made difficult by the fact that the multi-pitch detection produces erroneous notes such as extra notes and introduces timing errors that are added to temporal deviations due to musical expression. Thus, we propose a rhythm quantization method that can remove extra notes by extending the metrical hidden Markov model and optimize the model parameters. We also improve the note-tracking process of multi-pitch detection by refining the treatment of repeated notes and adjustment of onset times. Finally, we propose evaluation measures for transcribed scores. Systematic evaluations on commonly used classical piano data show that these treatments improve the performance of transcription, which can be used as benchmarks for further studies.
机译:自动转录的大多数工作都会产生“钢琴卷”数据,而没有对节奏或音高的音乐解释。我们提出了一种通过整合多音高检测和节奏量化方法将音乐音频信号转换为人类可读乐谱的复音转录方法。由于多音高检测会产生错误的音符(例如多余的音符)并引入由于音乐表达而导致时间误差增加的时间误差,因此使这种集成变得困难。因此,我们提出了一种节奏量化方法,该方法可以通过扩展测度隐马尔可夫模型并优化模型参数来消除多余的音符。通过改进重复音符的处理和调整起音时间,我们还改善了多音高检测的音符跟踪过程。最后,我们提出了转录分数的评估方法。对常用古典钢琴数据的系统评估表明,这些处理方法改善了转录性能,可以用作进一步研究的基准。

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