Publication | Open Access
Deep Neural Networks for YouTube Recommendations
3.3K
Citations
24
References
2016
Year
Unknown Venue
Natural Language ProcessingDeep Neural NetworksEngineeringInformation RetrievalMachine LearningData ScienceRanking AlgorithmHigh LevelMassive Recommendation SystemCold-start ProblemLearning To RankConversational Recommender SystemComputer ScienceDeep LearningCollaborative FilteringText Mining
YouTube represents one of the largest scale and most sophisticated industrial recommendation systems in existence. In this paper, we describe the system at a high level and focus on the dramatic performance improvements brought by deep learning. The paper is split according to the classic two-stage information retrieval dichotomy: first, we detail a deep candidate generation model and then describe a separate deep ranking model. We also provide practical lessons and insights derived from designing, iterating and maintaining a massive recommendation system with enormous user-facing impact.
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