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Evaluation and Comparison of Audio Chroma Feature Extraction Methods

机译:音频色度特征提取方法的评估与比较

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This paper analyzes and compares different methods for audio chroma feature extraction. The chroma feature is a descriptor, which represents the tonal content of a musical audio signal in a condensed form. Therefore chroma features can be considered as important prerequisite for high-level semantic analysis, like chord recognition or harmonic similarity estimation. A better quality of the extracted chroma feature enables much better results in these high-level tasks. In order to discover the quality of chroma features, seven different state-of-the-art chroma feature extraction methods have been implemented. Based on an audio database, containing 55 variations of triads, the output of these algorithms is critically evaluated. The best results were obtained with the Enhanced Pitch Class Profile.
机译:本文分析并比较了音频色度特征提取的不同方法。色度特征是描述符,其表示浓缩形式的音频信号的色调含量。因此,色度特征可以被视为高级别语义分析的重要前提,如和弦识别或谐波相似性估计。提取的色度特性的更好质量可以实现这些高级任务的更好的结果。为了发现色度特征的质量,已经实施了七种不同的最先进的色调提取方法。基于一个音频数据库,包含55个三种变体的音频数据库,这些算法的输出受到严格评估。使用增强的间距级别概况获得了最佳结果。

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