基于相似性的音乐边界检测

Y. Itoh, Akira Iwabuchi, K. Kojima, M. Ishigame, Kazuyo Tanaka, Shi-wook Lee
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引用次数: 0

摘要

本文提出了一种提取音乐边界的新方法,如音乐选段之间的边界,或音乐选段与语音之间的边界,用于视频数据的自动分割和其他应用。该方法在音乐选择中利用声学相似性。通过一种称为分段连续动态规划或分段CDP的新算法,首先提取相似的局部截面。音乐边界是通过引用多个相似的部分及其位置信息来识别的,这些信息是由分段CDP提取的。利用实际音乐数据集对该方法的音乐边界提取性能进行了评价。研究表明,所提出的方法能够很好地提取音乐边界,既适用于评价数据,也适用于真实的广播音乐节目。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Music Boundary Detection Using Similarity in a Music Selection
This paper proposes a new method of extracting music boundaries, such as a boundary between musical selections, or a boundary between a musical selection and a speech, for automatic segmentation of \ideo data and other applications. The method utilizes acoustic similarity in a music selection. Similar partial sections are first extracted, by means of a new algorithm called Segmental Continuous Dynamic Programming, or Segmental CDP. The music boundary is identified by reference to multiple similar sections and their location information, as extracted by Segmental CDP. The performance of the proposed method is evaluated for music boundary extraction using actual music data sets. The study demonstrates that the proposed method enables to extract music boundaries well for both evaluation data and a real broadcasted music program.
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