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Perceptual feature-based song genre classification using RANSAC

机译:使用RANSAC的基于感知特征的歌曲流派分类

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摘要

In the context of a content-based music retrieval system or archiving digital audio data, genre-based classification of song may serve as a fundamental step. In the earlier attempts, researchers have described, the song content by a combination of different types of features. Such features include various frequency and time domain descriptors depicting the signal aspects. Perceptual aspects also have been combined along with. A listener perceives a song mostly in terms of its tempo (rhythm), periodicity, pitch and their variation and based on those recognises the genre of the song. Motivated by this observation, in this work, instead of dealing with wide range of features we have focused only on the perceptual aspect like melody and rhythm. In order to do so audio content is described based on pitch, tempo, amplitude variation pattern and periodicity. Dimensionality of descriptor vector is reduced and finally, random sample and consensus (RANSAC) is used as the classifier. Experimental result indicates the effectiveness of the proposed scheme.
机译:在基于内容的音乐检索系统或归档数字音频数据的上下文中,基于流派的歌曲分类可以用作基本步骤。在更早的尝试中,研究人员已经描述了歌曲内容是通过组合不同类型的功能实现的。这样的特征包括描述信号方面的各种频域和时域描述符。感性方面也已经结合在一起。聆听者主要根据节奏,节奏,音调及其变化来感知歌曲,并以此为基础来识别歌曲的类型。出于这种观察的动机,在这项工作中,我们没有处理广泛的功能,而是只关注诸如旋律和节奏之类的感知方面。为此,基于音调,速度,幅度变化模式和周期性来描述音频内容。减少描述符向量的维数,最后,将随机样本和共识(RANSAC)用作分类器。实验结果表明了该方案的有效性。

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