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Friend Recommendation Algorithm Based on Interest Classification with Time Decay

机译:基于时间衰减兴趣分类的好友推荐算法

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Friend recommendation algorithm plays an important role in social networks. However, traditional recommendation algorithms do not take into account the drifting of user interests, and there are also some deficiencies when the recommendation's timeliness is considered. Aimed at this problem, the measure method of similarity was improved by combining with the characteristics of user interest's change with time. A time decay model was introduced to measure the predictive value. At the same time, the method refines the preference of the target users according to the homogeneity theory through the interest preference of friends. Through experiments on Sina microblog data set, and the results show that the algorithm to achieve better recommendation effect on precision, recall and F value.
机译:朋友推荐算法在社交网络中起着重要的作用。然而,传统的推荐算法没有考虑用户兴趣的漂移,并且当考虑推荐的及时性时也存在一些缺陷。针对该问题,结合用户兴趣随时间变化的特点,对相似度的度量方法进行了改进。引入了时间衰减模型来测量预测值。同时,该方法通过同质性理论,通过朋友的兴趣偏好来细化目标用户的偏好。通过对新浪微博数据集的实验,结果表明该算法在精度,查全率和F值上取得了较好的推荐效果。

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