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Automatic chord recognition based on the probabilistic modeling of diatonic modal harmony

机译:基于全音阶模态和声概率模型的自动和弦识别

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Chords and keys are among the most exhaustive descriptors of songs. In this study we focus on chord and key sequence recognition from an audio signal, in the context of pop and rock music. The system exploits a set of novel probabilistic models that describe the relationship between different aspects of music and their temporal evolution. These models are based on a set of parameters with a musical meaning. The models include two diatonic key modes, Dorian and Mixolydian, besides major and minor modes previously considered in the literature. These four key modes are the most used in western pop and rock music. In order to provide a compact representation of the chord and key sequences, three novel time-varying harmonybased features are here introduced. Given the importance of emotion characterization in music, the three features are here related to the mood perceived in songs. The method outperforms the state-of-the-art in both chord and key recognition tasks. In order to better train our parameters, we create annotations of chords and keys for a new dataset of 62 songs from the first five Robbie Williams?? albums.
机译:和弦和琴键是歌曲中最详尽的描述词。在这项研究中,我们重点研究流行音乐和摇滚音乐中来自音频信号的和弦和键序列识别。该系统利用了一组新颖的概率模型,这些模型描述了音乐不同方面与其时间演变之间的关系。这些模型基于具有音乐意义的一组参数。这些模型除了先前在文献中考虑过的主要和次要模式外,还包括两个全音阶键模式(Dorian和Mixolydian)。这四个键模式是西方流行音乐和摇滚音乐中使用最多的模式。为了提供和弦和键序列的紧凑表示,这里介绍了三种新颖的基于时变和声的功能。考虑到音乐中情感刻画的重要性,这三个特征在这里与歌曲中感知到的情绪有关。该方法在和弦和按键识别任务中均优于最新技术。为了更好地训练我们的参数,我们为前五名罗比·威廉姆斯(Robbie Williams)的62首歌曲的新数据集创建了和弦和琴键的注释。专辑。

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