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Automatic Segmentation and Comparative Study of Motives in Eleven Folk Song Collections using Self-Organizing Maps and Multidimensional Mapping

机译:使用自组织映射和多维映射对11种民歌中的动机进行自动分割和比较研究

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摘要

A data-based system for automatic segmentation of large folk song corpora is described in this article. The algorithm is based on a self-organizing map that learns the most typical motive contours. Using this system, the typical motive collections of 11 cultures in Eurasia were determined. The analysis of the overlaps between the cultures allowed us to draw a graph of connections, which shows two main distinct groups, according to the geographical distribution. These groups are connected by the cultures of the Carpathian Basin, which in itself assures the unbroken structure of the system of connections. The mapping of the motive contours into points of an appropriate three-dimensional space opened the possibility to analyse the musical structures of the typical motives in different cultures. Based on the segmentation algorithm, we also defined a melody similarity measure, determining local similarities between the closest motive contours.
机译:本文介绍了一种基于数据的大型民歌语料库自动分割系统。该算法基于学习最典型的运动轮廓的自组织图。使用该系统,确定了欧亚大陆11种文化的典型动机集合。对文化之间的重叠进行的分析使我们能够绘制关系图,该图根据地理分布显示了两个主要的不同群体。这些群体通过喀尔巴阡盆地的文化联系在一起,这本身就确保了联系系统的完整结构。将动机轮廓映射到适当的三维空间中的点,为分析不同文化中典型动机的音乐结构提供了可能性。基于分割算法,我们还定义了一种旋律相似度测度,确定了最接近的动机轮廓之间的局部相似度。

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  • 来源
    《Journal of New Music Research》 |2009年第1期|71-85|共15页
  • 作者

    Zoltn Juhsz;

  • 作者单位

    Research Institute for Technical Physics and Materials Science, Hungary;

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  • 正文语种 eng
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