可视化用户对在线音乐服务的兴趣

Jingxian Zhang, Dong Liu
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引用次数: 4

摘要

在线音乐服务在终端用户获取音乐方面一直很受欢迎,用户的兴趣(通过他们的下载记录反映出来)对于服务提供商了解用户从而提供个性化服务至关重要。但原始下载记录量大,难以直观分析。我们研究了一种可视化的方法来分析下载记录,以显示用户的兴趣。为了揭示音乐曲目之间的潜在相关性,我们不仅利用了音乐的元数据(尤其是流派),还利用了用户投票的协同相关性。为了呈现随时间变化的用户兴趣,我们设计了几个新的图形,即Bean图、Instrument图和Transitional Pie图,它们能够显示用户兴趣变化的不同方面。我们已经用一个真实的数据集进行了实验,结果表明了我们提出的可视化方法的有效性。我们的工作也启发了其他应用中时变数据的可视化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Visualization of user interests in online music services
Online music services have been popular for end users to obtain music, where user interests, as reflected by their downloading records, are crucial for service providers to understand users and thus to provide personalization. However, the raw downloading records are of huge volume and difficult to analyze intuitively. We study a visualization approach to analyzing downloading records so as to present user interests. To reveal the underlying relevance between music tracks, we utilized not only the metadata of music (especially genres), but also collaborative relevance that is voted by users. To present time varying user interests, we designed several new figures, namely Bean plot, Instrument plot, and Transitional Pie plot, that are capable in displaying different aspects of user interests variation. We have performed experiments with a real-world data set, and the results show the effectiveness of our proposed visualization method. Our work is also inspiring for visualization of time varying data in other applications.
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