一种启发式距离融合的翻唱歌曲识别方法

Alessio Degani, M. Dalai, R. Leonardi, P. Migliorati
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引用次数: 14

摘要

在本文中,我们提出了一种方法,将不同的翻唱歌曲识别算法的结果整合到一个单一的测量中,平均而言,它比初始算法给出了更好的结果。不同距离度量的融合是通过在多维空间中投影所有度量来实现的,其中该空间的维数是考虑距离的数量。在我们的实验中,我们测试了两种距离度量,即动态时间翘曲和Qmax度量,当以不同的组合应用于两个特征时,即显著性特征和谐波音高类轮廓(HPCP)。虽然HPCP旨在提取纯粹的和声描述,但事实上,Salience可以更好地辨别旋律差异。结果表明,两种或两种以上距离度量的组合可以提高系统的整体性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A heuristic for distance fusion in cover song identification
In this paper, we propose a method to integrate the results of different cover song identification algorithms into one single measure which, on the average, gives better results than initial algorithms. The fusion of the different distance measures is made by projecting all the measures in a multi-dimensional space, where the dimensionality of this space is the number of the considered distances. In our experiments, we test two distance measures, namely the Dynamic Time Warping and the Qmax measure when applied in different combinations to two features, namely a Salience feature and a Harmonic Pitch Class Profile (HPCP). While the HPCP is meant to extract purely harmonic descriptions, in fact, the Salience allows to better discern melodic differences. It is shown that the combination of two or more distance measure improves the overall performance.
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