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Applications of Optimal Stopping Algorithm for Social Graph Based Recommendation

机译:最优停止算法在基于社交图的推荐中的应用

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Recommendation Systems are becoming one of the most used tools in online marketing. In this paper, basic item based recommendation algorithms were extended to make use of a user's social circle's influence in deciding the recommendations. Depending on the social network of a user, the items to be recommended were selected. Apart from this, his own previous ratings of movies were considered to get an assessment of his taste and this was added up to this ego-network's preferences to get a list of recommendations. An optimal stopping algorithm was then implemented on top of this recommendation system. This algorithm helped us pick users better from the ego-network. In the end, a general recursive optimal stopping algorithm is proposed, providing an efficient way to search for best set of users to recommend movies from throughout the social network.
机译:推荐系统正在成为在线营销中最常用的工具之一。在本文中,基于基本项目的推荐算法得到了扩展,以利用用户社交圈的影响来确定推荐。根据用户的社交网络,选择了要推荐的项目。除此之外,他以前对电影的评价被认为是对他的品味的评估,并且将其加到这个自我网络的偏好中以获得推荐列表。然后,在此推荐系统之上实现了最佳停止算法。该算法帮助我们从自我网络中更好地选择了用户。最后,提出了一种通用的递归最优停止算法,该算法提供了一种搜索最佳用户集的有效方法,以推荐整个社交网络中的电影。

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