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Automatic Transcription of a Cappella recordings from Multiple Singers

机译:自动从多位歌手录制无伴奏合唱录音

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摘要

This work presents a spectrogram factorisation method applied to automatic music transcription of a cappella performances with multiple singers. A variable-Q transform representation of the audio spectrogram is factorised with the help of a 6-dimensional sparse dictionary which contains spectral templates of vowel vocalizations. A post-processing step is proposed to remove false positive pitch detections through a binary classifier, where overtone-based features are used as input into this step. Preliminary experiments have shown promising multi-pitch detection results when applied to audio recordings of Bach Chorales and Barbershop music. Comparisons made with alternative methods have shown that our approach increases the number of true positive pitch detections while the post-processing step keeps the number of false positives lower than those measured in comparative approaches.
机译:这项工作提出了一种频谱图分解方法,该方法适用于具有多个歌手的无伴奏表演的自动音乐转录。借助6维稀疏字典来分解音频频谱图的可变Q变换表示形式,该字典包含元音发声的频谱模板。提出了一个后处理步骤,以通过二进制分类器消除错误的正音高检测,其中基于泛音的特征用作该步骤的输入。初步实验表明,将其应用于巴赫·科拉雷斯(Bach Chorales)和理发店音乐的录音时,多音高检测结果很有希望。与其他方法进行的比较表明,我们的方法增加了真实正音高检测的数量,而后处理步骤则使虚假正音的数量低于比较方法中测得的虚假正音。

著录项

  • 来源
    《Conference on Semantic Audio》|2017年|104-111|共8页
  • 会议地点 Erlangen(DE)
  • 作者单位

    Computer Music Lab, Universidade Federal do Rio Grande Sul. Brazil,Centre for Digital Music, Queen Mary University of London, UK;

    Centre for Digital Music, Queen Mary University of London, UK;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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