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Friend recommendation algorithm based on location-based social networks

机译:基于位置社交网络的好友推荐算法

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摘要

The rapid expansion of user data and geographic location data in the location-based social networking applications, it is become increasingly difficult for users to quickly and accurately find the information they need. The characteristics of the traditional friend recommendation algorithm are analyzed and discussed in this paper. In order to improve the performance of friend recommendation, we proposed a linear framework combines the three traditional friend recommendation algorithms, which are recommendation based on the proportion of common friends, recommendation based on user-based collaborative filtering and recommendation based on normal check-in location, respectively. Real dataset are used to verify our new method. The experimental results show that compared with the existing algorithms, our improved adaptive recommendation algorithm has better result, which can effectively improve the accuracy and recall rate of friend recommendation.
机译:在基于位置的社交网络应用程序中,用户数据和地理位置数据的迅速扩展,使用户快速,准确地找到他们所需的信息变得越来越困难。本文分析并讨论了传统好友推荐算法的特点。为了提高好友推荐的性能,我们提出了一种线性框架,结合了三种传统的好友推荐算法,分别是基于普通好友比例的推荐,基于用户协同过滤的推荐和基于正常签到的推荐。位置。实际数据集用于验证我们的新方法。实验结果表明,与现有算法相比,改进后的自适应推荐算法具有更好的效果,可以有效提高好友推荐的准确性和召回率。

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