Does Track Sequence in User-generated Playlists Matter?

Harald Schweiger, Emilia Parada-Cabaleiro, M. Schedl
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引用次数: 1

Abstract

The extent to which the sequence of tracks in music playlists matters to listeners is a disputed question, nevertheless a very important one for tasks such as music recommendation (e. g., automatic playlist generation or continuation). While several user studies already approached this question, results are largely inconsistent. In contrast, in this paper we take a data-driven approach and investigate 704,166 user-generated playlists of a major music streaming provider. In particular, we study the consistency (in terms of variance) of a variety of audio features and metadata between subsequent tracks in playlists, and we relate this variance to the corresponding variance computed on a position-independent set of tracks. Our results show that some features vary on average up to 16% less among subsequent tracks in comparison to position-independent pairs of tracks. Furthermore, we show that even pairs of tracks that lie up to 11 positions apart in the playlist are significantly more consistent in several audio features and genres. Our findings yield a better understanding of how users create playlists and will stimulate further progress in sequential music recommenders.
轨道序列在用户生成的播放列表重要吗?
音乐播放列表中的曲目顺序对听众的影响程度是一个有争议的问题,然而对于音乐推荐等任务(例如,自动播放列表生成或延续)来说,这是一个非常重要的问题。虽然一些用户研究已经触及了这个问题,但结果在很大程度上是不一致的。相比之下,在本文中,我们采用数据驱动的方法,调查了一家主要音乐流媒体提供商的704,166个用户生成的播放列表。特别是,我们研究了播放列表中后续曲目之间各种音频特征和元数据的一致性(根据方差),并将这种方差与在位置无关的曲目集上计算的相应方差联系起来。我们的研究结果表明,与位置无关的轨道对相比,某些特征在后续轨道之间的平均变化可减少16%。此外,我们表明,即使是在播放列表中相距11个位置的曲目对,在几个音频特征和流派中也明显更加一致。我们的研究结果有助于更好地理解用户是如何创建播放列表的,并将促进顺序音乐推荐的进一步发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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