Schenkerian Analysis Dataset
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Schenkerian Analysis Dataset是由杜克大学创建的一个大型数据集,专门用于计算Schenkerian音乐分析。该数据集包含145个分析,涵盖了从巴赫到肖斯塔科维奇等多个作曲家的作品。数据集的内容主要描述了音乐作品中的层次结构关系,特别是赋格主题的层次关系。数据集的创建过程涉及多位资深Schenkerian分析学者,他们通过专门的软件工具进行数据收集和可视化。该数据集的应用领域主要是在音乐信息检索和音乐生成任务中,旨在通过机器学习模型更好地理解和生成音乐结构。
Schenkerian Analysis Dataset is a large-scale dataset developed by Duke University, exclusively tailored for computational Schenkerian music analysis. It comprises 145 analytical entries covering musical works created by a diverse range of composers, spanning from Johann Sebastian Bach to Dmitri Shostakovich. The dataset primarily documents the hierarchical structural relationships inherent in musical compositions, with a particular focus on the hierarchical relationships of fugue subjects. The creation of this dataset involved several senior Schenkerian analysis scholars, who utilized specialized software tools for data collection and visualization. Its core application scenarios include music information retrieval and music generation tasks, with the goal of empowering machine learning models to gain a deeper understanding of musical structures and generate such structures more effectively.

- 1A New Dataset, Notation Software, and Representation for Computational Schenkerian Analysis杜克大学 · 2024年



