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  2. Meet the Netflix executive responsible for your recommendations

    www.aol.com/news/meet-netflix-executive...

    Netflix Chief Product Officer Eunice Kim discusses how the streamer recommends content and how the platform will evolve as other types of contents like games are added.

  3. Collaborative filtering - Wikipedia

    en.wikipedia.org/wiki/Collaborative_filtering

    In order to make appropriate recommendations for a new user, the system must first learn the user's preferences by analysing past voting or rating activities. The collaborative filtering system requires a substantial number of users to rate a new item before that item can be recommended.

  4. These simple Netflix tricks make your recommendations ... - AOL

    www.aol.com/news/simple-netflix-tricks...

    The post These simple Netflix tricks make your recommendations so much better appeared first on BGR. The bad headlines that have mounted around Netflix over the last several weeks — stemming ...

  5. Matrix factorization (recommender systems) - Wikipedia

    en.wikipedia.org/wiki/Matrix_factorization...

    While Funk MF is able to provide very good recommendation quality, its ability to use only explicit numerical ratings as user-items interactions constitutes a limitation. Modern day recommender systems should exploit all available interactions both explicit (e.g. numerical ratings) and implicit (e.g. likes, purchases, skipped, bookmarked). To ...

  6. Netflix Prize - Wikipedia

    en.wikipedia.org/wiki/Netflix_Prize

    The Netflix Prize was an open competition for the best collaborative filtering algorithm to predict user ratings for films, based on previous ratings without any other information about the users or films, i.e. without the users being identified except by numbers assigned for the contest.

  7. Why Netflix's Recommendations Are Getting Better - AOL

    www.aol.com/news/2013-08-15-why-netflixs...

    The viewing behavior of Netflix's streaming members is telling the company something, and the good news for subscribers -- and investors -- is that Netflix is listening. Its recommendation engine ...

  8. Gravity R&D - Wikipedia

    en.wikipedia.org/wiki/Gravity_R&D

    The Netflix Prize was an open competition for the best collaborative filtering algorithm to predict user ratings for films, based on previous ratings. The prize would be awarded to the team achieving over 10% improvement over Netflix's own Cinematch algorithm. The team "Gravity" was the front runner during January—May 2007. [2]

  9. Item-item collaborative filtering - Wikipedia

    en.wikipedia.org/wiki/Item-item_collaborative...

    Second, the system executes a recommendation stage. It uses the most similar items to a user's already-rated items to generate a list of recommendations. Usually this calculation is a weighted sum or linear regression. This form of recommendation is analogous to "people who rate item X highly, like you, also tend to rate item Y highly, and you ...