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Leveraging Social Media Sources to Generate Personalized Music Playlists

机译:利用社交媒体源生成个性化的音乐播放列表

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This paper presents MyMusic, a system that exploits social media sources for generating personalized music playlists. This work is based on the idea that information extracted from social networks, such as Facebook and Last.fm, might be effectively exploited for personalization tasks. Indeed, information related to music preferences of users can be easily gathered from social platforms and used to define a model of user interests. The use of social media is a very cheap and effective way to overcome the classical cold start problem of recommender systems. In this work we enriched social media-based playlists with new artists related to those the user already likes. Specifically, we compare two different enrichment techniques: the first leverages the knowledge stored on DBpedia, the structured version of Wikipedia, while the second is based on the content-based similarity between descriptions of artists. The final playlist is ranked and finally presented to the user that can listen to the songs and express her feedbacks. A prototype version of MyMusic was made available online in order to carry out a preliminary user study to evaluate the best enrichment strategy. The preliminary results encouraged keeping on this research.
机译:本文介绍了MyMusic,这是一个利用社交媒体源生成个性化音乐播放列表的系统。这项工作基于这样的想法:从社交网络(例如Facebook和Last.fm)提取的信息可以有效地用于个性化任务。实际上,与用户的音乐喜好有关的信息可以很容易地从社交平台上收集,并用于定义用户兴趣的模型。社交媒体的使用是一种非常便宜且有效的方法,可以克服推荐系统的经典冷启动问题。在这项工作中,我们丰富了基于社交媒体的播放列表,增加了与用户已经喜欢的艺术家相关的新艺术家。具体而言,我们比较了两种不同的丰富技术:第一种利用存储在DBpedia(即Wikipedia的结构化版本)上的知识,而第二种则基于艺术家描述之间基于内容的相似性。最终的播放列表将被排名,并最终呈现给可以收听歌曲并表达自己反馈的用户。 MyMusic的原型版本已在线提供,以便进行初步的用户研究以评估最佳浓缩策略。初步结果鼓励继续进行这项研究。

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