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A Divide and Conquer Approach to Automatic Music Transcription Using Neural Networks

机译:使用神经网络划分和征服自动音乐转录的方法

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This paper describes a new approach for the automatic music transcription problem. We take advantage of the divide and conquer design paradigm and create several artificial neural networks, each one responsible for transcribing one musical note. This way, we depart from the traditional approach which resorts to a single classifier for transcribing all musical notes. To further improve results, an additional post-processing stage using artificial neural networks with the same design paradigm is also proposed. This last stage comprises three main steps: (1) fix notes duration, (2) fix notes duration regarding onsets and (3) fix onsets. The obtained results show that these steps were essential to improve the final transcription. We also compare our results with existing neural network-based approaches. Our approach is able to surpass current state-of-the-art works in frame-based results and, at the same time, reach similar results in onset only, thus demonstrating its viability.
机译:本文介绍了一种自动音乐转录问题的新方法。我们利用了分界和征服设计范式并创建了几个人工神经网络,每个人负责转录一个音符。这样,我们从传统的方法中脱离了一个分类器,用于翻译所有音符。为了进一步改进结果,还提出了使用具有相同设计范式的人工神经网络的额外后处理阶段。最后阶段包括三个主要步骤:(1)修复注释持续时间,(2)修复关于持续挂起的注意持续时间和(3)修复挂载。得到的结果表明,这些步骤对于改善最终转录至关重要。我们还将结果与现有的基于神经网络的方法进行比较。我们的方法能够超越基于帧的结果的最新的工作,同时仅达到类似的结果,从而展示其可行性。

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