Groove radio: A Bayesian hierarchical model for personalized playlist generation

Shay Ben-Elazar, Gal Lavee, Noam Koenigstein, Oren Barkan, Hilik Berezin, Ulrich Paquet, Tal Zaccai

نتاج البحث: فصل من :كتاب / تقرير / مؤتمرمنشور من مؤتمرمراجعة النظراء

ملخص

This paper describes an algorithm designed for Microsoft's Groove music service, which serves millions of users world wide. We consider the problem of automatically generating personalized music playlists based on queries containing a "seed" artist and the listener's user ID. Playlist generation may be informed by a number of information sources in- cluding: user specific listening patterns, domain knowledge encoded in a taxonomy, acoustic features of audio tracks, and overall popularity of tracks and artists. The importance assigned to each of these information sources may vary de- pending on the specific combination of user and seed artist. The paper presents a method based on a variational Bayes solution for learning the parameters of a model containing a four-level hierarchy of global preferences, genres, sub-genres and artists. The proposed model further incorporates a per- sonalization component for user-specific preferences. Em- pirical evaluations on both proprietary and public datasets demonstrate the effectiveness of the algorithm and showcase the contribution of each of its components.

اللغة الأصليةالإنجليزيّة
عنوان منشور المضيفWSDM 2017 - Proceedings of the 10th ACM International Conference on Web Search and Data Mining
ناشرAssociation for Computing Machinery, Inc
الصفحات445-453
عدد الصفحات9
رقم المعيار الدولي للكتب (الإلكتروني)9781450346757
المعرِّفات الرقمية للأشياء
حالة النشرنُشِر - 2 فبراير 2017
منشور خارجيًانعم
الحدث10th ACM International Conference on Web Search and Data Mining, WSDM 2017 - Cambridge, بريطانيا
المدة: ٦ فبراير ٢٠١٧١٠ فبراير ٢٠١٧

سلسلة المنشورات

الاسمWSDM 2017 - Proceedings of the 10th ACM International Conference on Web Search and Data Mining

!!Conference

!!Conference10th ACM International Conference on Web Search and Data Mining, WSDM 2017
الدولة/الإقليمبريطانيا
المدينةCambridge
المدة٦/٠٢/١٧١٠/٠٢/١٧

ملاحظة ببليوغرافية

Publisher Copyright:
© 2017 ACM.

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