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A hybrid approach to singing pitch extraction based on trend estimation and hidden Markov models

机译:基于趋势估计和隐马尔可夫模型的混合音高提取方法

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In this paper, we propose a hybrid method for singing pitch extraction from polyphonic audio music. We have observed several kinds of pitch errors made by a previously proposed algorithm based on trend estimation. We also noticed that other pitch tracking methods tend to have other types of pitch error. Then it becomes intuitive to combine the results of several pitch trackers to achieve a better accuracy. In this paper, we adopt 3 methods as a committee to determine the pitch, including the trend-estimation-based method for forward and backward signals, and training-based HMM method. Experimental results demonstrate that the proposed approach outperforms the best algorithm for the task of audio melody extraction in MIREX 2010.
机译:在本文中,我们提出了一种从复音音频音乐中提取音高的混合方法。我们已经观察到了由先前提出的基于趋势估计的算法造成的几种音高误差。我们还注意到,其他音高跟踪方法倾向于具有其他类型的音高误差。然后,将多个音高跟踪器的结果进行组合以实现更高的准确性将变得非常直观。在本文中,我们采用3种方法来确定音高,包括基于趋势估计的前向和后向信号方法以及基于训练的HMM方法。实验结果表明,该方法在MIREX 2010中的音频旋律提取任务优于最佳算法。

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