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User Profile in Absence of Ground Truth for Mobile Users

机译:缺乏针对移动用户的真实情况的用户个人资料

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Mobile user personalization is used to increase user engagement on many platforms. One way to achieve personalization is by building user profiles, which encompass certain attributes of mobile phone users. Mobile manufactures and service providers often collect data of their users in order to provide personalized services. This collected data is rich in user behavior, but seldom has enough ground truth information collected directly from users to build a user profile. In this paper, we address this problem and provide a framework for developing user profile of mobile users in absence of ground truth data. Our approach consists of a one-class classification technique to address this issue. We test our method on data of one million mobile phone users and show that the predicted accuracy is close to that achieved using a supervised model. We further extend this method to predict other attributes of the user, again getting a good accuracy.
机译:移动用户个性化用于增加许多平台上的用户参与度。实现个性化的一种方法是构建用户配置文件,其中包含移动电话用户的某些属性。移动制造商和服务提供商通常会收集其用户的数据,以便提供个性化服务。这些收集的数据具有丰富的用户行为,但是很少有直接从用户那里收集来的足够的真实信息来建立用户配置文件。在本文中,我们解决了这个问题,并提供了一个在缺乏地面真实数据的情况下开发移动用户的用户资料的框架。我们的方法包括一种用于解决此问题的一类分类技术。我们对一百万个手机用户的数据进行了测试,结果表明预测的准确性接近于使用监督模型获得的准确性。我们进一步扩展了此方法,以预测用户的其他属性,从而再次获得良好的准确性。

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