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Demographic information prediction based on smartphone application usage

机译:基于智能手机应用程序使用情况的人口统计信息预测

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Demographic information is usually treated as private data (e.g., gender and age), but has been shown great values in personalized services, advertisement, behavior study and other aspects. In this paper, we propose a novel approach to make efficient demographic prediction based on smartphone application usage. Specifically, we firstly consider to characterize the data set by building a matrix to correlate users with types of categories from the log file of smartphone applications. By considering the category-unbalance problem, we predict users' demographic information and propose an optimization method to further smooth the obtained results with category neighbors and user neighbors. The evaluation is supplemented by the dataset from real world workload. The results show advantages of the proposed prediction approach compared with baseline prediction. In particular, the proposed approach can achieve 81.21% of Accuracy in gender prediction. While in dealing with a more challenging multi-class problem, the proposed approach can still achieve good performance (e.g., 73.84% of Accuracy in the prediction of age group and 66.42% of Accuracy in the prediction of phone level).
机译:人口统计信息通常被视为私人数据(例如性别和年龄),但是在个性化服务,广告,行为研究和其他方面已显示出巨大的价值。在本文中,我们提出了一种基于智能手机应用程序使用情况进行有效人口统计预测的新颖方法。具体来说,我们首先考虑通过建立一个矩阵来表征数据集,以将用户与智能手机应用程序日志文件中的类别类型相关联。通过考虑类别不平衡问题,我们预测了用户的人口统计信息,并提出了一种优化方法,以进一步平滑类别邻居和用户邻居获得的结果。评估工作由来自实际工作负载的数据集进行了补充。结果表明,与基线预测相比,所提出的预测方法具有优势。特别地,所提出的方法可以在性别预测中实现81.21%的准确性。虽然在处理更具挑战性的多类别问题时,建议的方法仍然可以实现良好的性能(例如,预测年龄组的准确度为73.84%,预测电话级别的准确度为66.42%)。

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