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A Study on the Musical Theme Clustering for Searching Note Sequences

음렬 탐색을 위한 주제소절 자동분류에 관한 연구

  • Published : 2002.09.01

Abstract

In this paper, classification feature is selected with focus of musical content, note sequences pattern, and measures similarity between note sequences followed by constructing clusters by similar note sequences, which is easier for users to search by showing the similar note sequences with the search result in the CBMR system. Experimental document was $\ulcorner$A Dictionary of Musical Themes$\lrcorner$, the index of theme bar focused on classical music and obtained kern-type file. Humdrum Toolkit version 1.0 was used as note sequences treat tool. The hierarchical clustering method is by stages focused on four-type similarity matrices by whether the note sequences segmentation or not and where the starting point is. For the measurement of the result, WACS standard is used in the case of being manual classification and in the case of the note sequences starling from any point in the note sequences, there is used common feature pattern distribution in the cluster obtained from the clustering result. According to the result, clustering with segmented feature unconnected with the starting point Is higher with distinct difference compared with clustering with non-segmented feature.

본 연구는 음악의 내용에 해당하는 음렬 패턴을 대상으로 분류자질을 선정하고 이를 기준으로 음렬간 유사도를 측정한 후 음렬간 군집을 형성하였다. 이는 내용기반음악검색 시스템에서 유사한 음렬을 검색 결과로 제시함으로써 이용자 탐색을 용이하게 하기 위함이다. 실험문헌집단으로는 $\ulcorner$A Dictionary of Musical Themes$\lrcorner$에 수록된 주제소절의 kern 형식 파일을 사용하였으며, 음렬 처리도구로는 Humdrum Toolkit version 1.0을 사용하였다. 음렬의 분절 여부와 시작 위치에 따른 네 가지 형태의 유사도 행렬을 대상으로 계층적 클러스터링 기법을 사용하여 유사한 음렬간 군집을 형성하였다. 이들 결과에 대한 평가는 외적 기준이 되는 수작업 분류표가 있는 경우 WACS 척도를 사용하였고, 음렬 내 임의의 위치에서부터 시작한 음렬을 대상으로 한 경우, 클러스터링 결과로부터 얻어낸 군집 내 공통 자질 패턴 분포를 통해 내적 기준을 마련하여 평가하였다. 평가 결과에 의하면 음렬의 시작 위치와 무관하게 분절한 자질을 사용하여 클러스터링한 결과가 그렇지 않은 것에 비해 뚜렷한 차이를 보이며 높게 나타났다.

Keywords

References

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