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Measuring similarity between user profile and library book

机译:测量用户个人资料和图书馆书籍之间的相似性

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In the development of recommender system either the content or collaborative filtering is necessary. To filter the records it is required to measure the similarity between profile of user and items present in the dataset. This experiment is performed on the dataset containing 978 books related to computer science field and 7 users. Similarity between profile of user and contents of book is measured using Euclidean, Manhattan, Minkowski, Cosine distances. The results are evaluated and compared. This work is useful in the development of library recommender system.
机译:在推荐系统的开发中,内容或协作过滤都是必要的。为了过滤记录,需要测量用户资料和数据集中存在的项目之间的相似度。该实验是在包含978本与计算机科学领域相关的书籍和7个用户的数据集上进行的。用户资料和书籍内容之间的相似性是使用欧几里得距离,曼哈顿距离,明可夫斯基距离,余弦距离来衡量的。评估结果并进行比较。这项工作对图书馆推荐系统的开发很有用。

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