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Stream segregation algorithm for pattern matching in polyphonic music databases

机译:和弦音乐数据库中用于模式匹配的流分离算法

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摘要

As music can be represented symbolically, most of the existing methods extend some string matching algorithms to retrieve musical patterns in a music database. However, not all retrieved patterns are perceptually significant because some of them are, in fact, inaudible. Music is perceived in groupings of musical notes called streams. The process of grouping musical notes into streams is called stream segregation. Stream-crossing musical patterns are perceptually insignificant and should be pruned from the retrieval results. This can be done if all musical notes in a music database are segregated into streams and musical patterns are retrieved from the streams. Findings in auditory psychology are utilized in this paper, in which stream segregation is modelled as a clustering process and an adapted single-link clustering algorithm is proposed. Supported by experiments on real music data, streams are identified by the proposed algorithm with considerable accuracy.
机译:由于音乐可以象征性地表示,因此大多数现有方法都扩展了一些字符串匹配算法,以检索音乐数据库中的音乐模式。但是,并非所有检索到的模式在感知上都是有意义的,因为实际上其中一些是听不到的。音乐在称为流的音符分组中被感知。将音符分组为流的过程称为流分离。跨流音乐模式在感知上微不足道,应从检索结果中删除。如果将音乐数据库中的所有音符都分成流,并从流中检索音乐模式,则可以这样做。本文利用听觉心理学的发现,将流隔离建模为一个聚类过程,并提出了一种适合的单链接聚类算法。通过对真实音乐数据的实验支持,所提出的算法可以以很高的精度识别流。

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