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Multitask Learning for Polyphonic Piano Transcription, a Case Study

机译:多族学习多关钢琴转录,案例研究

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Viewing polyphonic piano transcription as a multitask learning problem, where we need to simultaneously predict onsets, intermediate frames and offsets of notes, we investigate the performance impact of additional prediction targets, using a variety of suitable convolutional neural network architectures. We quantify performance differences of additional objectives on the larGe MAESTRO dataset.
机译:将复态钢琴转录视为一个多任务学习问题,在那里我们需要同时预测笔记的持续性,中间帧和偏移,我们研究了使用各种合适的卷积神经网络架构的额外预测目标的性能影响。我们量化大型Maestro DataSet上额外目标的性能差异。

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