J4 ›› 2016, Vol. 38 ›› Issue (03): 590-594.
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卢露
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国家自然科学基金(61272277)
LU lu
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摘要:
基于位置社交网络的服务层出不穷,而地点推荐系统是其最主要的应用之一。目前地点推荐算法均致力于提高用户对地点的兴趣度预测,没有考虑时间因素对推荐结果的影响。事实上人们是否访问某一地点,与其所处的时间是紧密相关的。因此提出了一种概率模型,在统一的框架下将用户的兴趣度、用户所处时间和地点自身的流行度三个因素综合考虑,并在真实的数据集Foursquare上进行了测试。实验表明,与其他的方法相比,本方法能够获得更好的推荐效果,增强了用户体验。
关键词: 基于位置社交网络, 地点推荐, 贝叶斯原理
Abstract:
An increasing number of location based social networking services emerge, and location recommendation systems are one of its main applications. Currently, more and more scholars study location recommendation algorithms, which are committed to improve the prediction of users’ location interest degree without considering the time factor. In fact whether or not people will visit a place is closely related to timing. We therefore propose a probabilistic model, which takes the three factors, which are users’ interest degree inthe place, timing and the popularity of the place, into account under the unified framework. We test the algorithm on a real data set extracted from Foursquare, and the results show that our method can achieve better recommendation compared with the classical approaches, and it can enhance users’ experience as well.
Key words: location based social network;location recommendation;Bayesian principle
卢露. 基于时间感知的地点推荐算法[J]. J4, 2016, 38(03): 590-594.
LU lu. A timeaware based location recommendation algorithm [J]. J4, 2016, 38(03): 590-594.
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http://joces.nudt.edu.cn/CN/Y2016/V38/I03/590