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首页> 外文期刊>Audio, Speech, and Language Processing, IEEE Transactions on >Automatic Transcription of Guitar Chords and Fingering From Audio
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Automatic Transcription of Guitar Chords and Fingering From Audio

机译:吉他和弦的自动转录和音频中的指法

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摘要

This paper proposes a method for extracting the fingering configurations automatically from a recorded guitar performance. 330 different fingering configurations are considered, corresponding to different versions of the major, minor, major 7th, and minor 7th chords played on the guitar fretboard. The method is formulated as a hidden Markov model, where the hidden states correspond to the different fingering configurations and the observed acoustic features are obtained from a multiple fundamental frequency estimator that measures the salience of a range of candidate note pitches within individual time frames. Transitions between consecutive fingerings are constrained by a musical model trained on a database of chord sequences, and a heuristic cost function that measures the physical difficulty of moving from one configuration of finger positions to another. The method was evaluated on recordings from the acoustic, electric, and the Spanish guitar and clearly outperformed a non-guitar-specific reference chord transcription method despite the fact that the number of chords considered here is significantly larger.
机译:本文提出了一种从录制的吉他演奏中自动提取指法配置的方法。考虑了330种不同的指法配置,分别对应于吉他指板上演奏的大,小,大7和和小7和弦的不同版本。该方法被公式化为隐藏的马尔可夫模型,其中隐藏的状态对应于不同的指法配置,并且观察到的声学特征是从多个基本频率估计器获得的,该估计器测量各个时间范围内候选音符音高范围的显着性。连续指法之间的过渡受到在和弦序列数据库中训练的音乐模型以及测量从一种手指位置配置转移到另一种手指位置的物理难度的启发式成本函数的约束。该方法是根据原声,电和西班牙吉他的录音进行评估的,尽管事实上这里考虑的和弦数量明显很多,但其性能明显优于非吉他特定的参考和弦转录方法。

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