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GRSAT: A Novel Method on Group Recommendation by Social Affinity and Trustworthiness

机译:GRSAT:一种基于社会亲和力和信任度的团体推荐的新方法

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摘要

Existing group recommender systems generate a consensus function to aggregate individual preference into group preference. However, the systems encounter difficulty in gathering rating-scores and validating their reliability, since the aggregation strategy requires user rating-scores. To solve these problems, we propose Group Recommendation based on Social Affinity and Trustworthiness (GRSAT) based on social affinity and trustworthiness, which is obtained from the user's watching-history and content features, without rating-score. Our experiment proves that GRSAT has outstanding performance for group recommendation compared with the other consensus functions, in terms of the number of the movies and users, on both biased and unbiased groups.
机译:现有的小组推荐系统会生成共识功能,以将个人偏好汇总为小组偏好。但是,由于聚合策略需要用户评分分数,因此系统在收集评分分数和验证其可靠性方面遇到困难。为了解决这些问题,我们提出了基于社会亲和度和可信赖度的组推荐(GRSAT),该推荐基于社会亲和度和可信赖度,该推荐是从用户的观看历史和内容特征获得的,没有评分。我们的实验证明,相对于其他共识函数,无论在有偏见的小组还是无偏见的小组上,GRASAT在影片推荐和用户数量上均比其他共识功能出色。

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