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First Place Solution for NLPCC 2017 Shared Task Social Media User Modeling

机译:NLPCC 2017共享任务社交媒体用户建模的第一名解决方案

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With the popularity of mobile Internet, many social networking applications provide users with the function to share their personal information. It is of high commercial value to leverage the users' personal information such as tweets, preferences and locations for user profiling. There are two subtasks working in user profiling. Subtask one is to predict the Point-of-Interest (POI) a user will check in at. We adopted a combination of multiple approach results, including user-based collaborative filtering (CF) and social-based CF to predict the locations. Subtask two is to predict the users' gender. We divided the users into two groups, depending on whether the user has posted or not. We treat this task subtask as a classification task. Our results achieved first place in both subtasks.
机译:随着移动互联网的普及,许多社交网络应用程序为用户提供共享他们的个人信息的功能。它具有高商业价值,以利用用户的个人信息,例如用户分析的推文,偏好和位置等。在用户分析中有两个子任务。子任务是预测用户将登录的兴趣点(POI)。我们采用了多种方法结果的组合,包括基于用户的协作滤波(CF)和基于社会的CF来预测位置。 SubTask二是预测用户的性别。我们将用户分为两组,具体取决于用户是否已发布。我们将此任务子任务视为分类任务。我们的结果在两个子组织中获得了第一名。

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