基于二元音高感知模型的混合神经网络用于歌唱旋律提取

Hsin Chou, Ming-Tso Chen, T. Chi
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引用次数: 13

摘要

本文通过模拟人的音高感知,建立了一种用于从复调音乐中提取歌唱旋律的混合神经网络。对于人类的听觉来说,根据是否分辨谐波,有两种音高感知模型,即频谱模型和时间模型。在这里,我们首先使用神经网络来实现单个模型,并评估它们在歌曲旋律提取任务中的表现。然后,我们将这些神经网络组合成复合神经网络来模拟双工模型,该模型利用时间模型补充了频谱模型中未解析谐波的音高感知。仿真结果表明,本文提出的复合神经网络在歌曲旋律提取方面优于其他传统方法。
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A Hybrid Neural Network Based on the Duplex Model of Pitch Perception for Singing Melody Extraction
In this paper, we build up a hybrid neural network (NN) for singing melody extraction from polyphonic music by imitating human pitch perception. For human hearing, there are two pitch perception models, the spectral model and the temporal model, in accordance with whether harmonics are resolved or not. Here, we first use NNs to implement individual models and evaluate their performance in the task of singing melody extraction. Then, we combine the NNs to constitute the composite NN to simulate the duplex model, which complements the pitch perception from unresolved harmonics of the spectral model using the temporal model. Simulation results show the proposed composite NN outperforms other conventional methods in singing melody extraction.
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