推荐系统简化意见形成

R. Vignesh, Kumar Rishabh
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引用次数: 0

摘要

本文旨在介绍一种向用户推荐电影的新方法。它是对现有的基于内容的推荐系统和协同过滤方法的改进。为用户和电影创建相似的特征向量,我们根据每一个通过的推荐更新它。然后,我们使用均方根误差技术通过计算特征的差值来找到最近的用户。我们最后得出结论,并观察这种算法优于其他流行算法的情况。我们还分析了它的缺点,并列出了未来可以改进的地方。
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Recommendation system to simplify opinion formation
This paper aims at introducing a new way of recommending movies to users. It is an improvement on the existing approaches of Content Based Recommendation system and Collaborative Filtering. Creating similar feature vectors for both the users and movies, we update it with every passing recommendation made. We then find out the nearest user by calculating the difference in the feature using root mean square error technique. We finally draw out a conclusion and observe the cases where this outperforms other popular algorithms. We also look at its shortcomings and list the scope for future improvements that could be made.
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