作者
Jihang Ye, Zhe Zhu, Hong Cheng
发表日期
2013/5/2
图书
Proceedings of the 2013 SIAM International Conference on Data Mining
页码范围
171-179
出版商
Society for Industrial and Applied Mathematics
简介
Location-based social networks have been gaining increasing popularity in recent years. To increase users’ engagement with location-based services, it is important to provide attractive features, one of which is geo-targeted ads and coupons. To make ads and coupon delivery more effective, it is essential to predict the location that is most likely to be visited by a user at the next step. However, an inherent challenge in location prediction is a huge prediction space, with millions of distinct check-in locations as prediction target. In this paper we exploit the check-in category information to model the underlying user movement pattern. We propose a framework which uses a mixed hidden Markov model to predict the category of user activity at the next step and then predict the most likely location given the estimated category distribution. The advantages of modeling the category level include a significantly reduced …
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