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AUTOMATIC MUSIC TRANSCRIPTION USING ROW WEIGHTED DECOMPOSITIONS

机译:AUTOMATIC MUSIC TRANSCRIPTION USING ROW WEIGHTED DECOMPOSITIONS

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Automatic Music Transcription (AMT) seeks to understand a musical piece in terms of note activities. Matrix decomposition methods are often used for AMT, seeking to decompose a spectrogram over a dictionary matrix of note-specific template vectors. The performance of these methods can suffer due to the large harmonic overlap found in tonal musical spectra. We propose a row weighting scheme that transforms each spectrogram frame and the dictionary, with the weighting determined by the effective correlations in the decomposition. Experiments show improved AMT performance.
机译:自动音乐转录(AMT)旨在通过音符活动来理解音乐作品。矩阵分解方法通常用于AMT,寻求在注释特定模板向量的字典矩阵上分解谱图。这些方法的性能可能会受到影响,因为在音调音乐谱中发现了大量的谐波重叠。我们提出了一种行加权方案,用于变换每个谱图帧和字典,加权由分解中的有效相关性确定。实验表明,AMT性能得到了改善。

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