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Automatic classification of classical music compositions

机译:自动分类古典音乐作品

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In this study, we used several algorithms to classify classical music composers on a dataset called MusicNet. After extracting quantitive features from each composition in a workable format, composer of each composition is predicted by using K-Nearest Neighbor, Support Vector Machine and Decision Tree algorithms. Several experiments are performed on different data subsets that includes two, five and ten different composers. It is observed that the classification accuracy obtained in our experiments are comparable to the results of other similar studies in research literature. This electronic document is a “live” template and already defines the components of your paper [title, text, heads, etc.] in its style sheet.
机译:在这项研究中,我们使用了几种算法在名为MusicNet的数据集上对古典音乐作曲家进行分类。从可行的格式中提取每个构图的量化特征后,可以使用K最近邻,支持向量机和决策树算法来预测每个构图的作曲者。对包括两个,五个和十个不同的作曲者的不同数据子集执行了一些实验。可以观察到,在我们的实验中获得的分类精度可与研究文献中其他类似研究的结果相媲美。该电子文档是一个“实时”模板,已经在其样式表中定义了纸张的组成部分[标题,文本,标题等]。

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