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360° user profile learning from multiple social networks for wellness and urban mobility applications

机译:从多个社交网络进行360°用户配置文件学习,以实现健康和城市出行应用

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摘要

The thesis focused on investigating user profiling across multiple social networks in Wellness and Urban Mobility domains. Considering that user profiling can be performed at individual and group levels, this thesis proposes two multi-source learning schemes: multi-source learning scheme for individual user profiling and multi-source community detection scheme for group user profiling. We practically applied the proposed approaches in three user profiling scenarios: demographic profiling, physical wellness profiling, and venue category recommendation. The experimental results enable us to draw the following three key findings. First, utilization of multiple data sources improves the performance of individual and group user profiling as well as their applications. Second, it is important to take inter-category relatedness into account when dealing with multiple social networks and sensor data simultaneously. Third, in the context of group user profiling, consideration of inter-network relationship is essential.
机译:本文的重点是调查健康和城市出行领域中跨多个社交网络的用户配置文件。考虑到可以在个人和团体级别执行用户概要分析,本文提出了两种多源学习方案:用于个人用户概要的多源学习方案和用于组用户概要的多源社区检测方案。我们在三种用户概要分析方案中实际应用了建议的方法:人口统计概要,身体健康概要以及场所类别推荐。实验结果使我们能够得出以下三个主要发现。首先,利用多个数据源可提高个人和组用户配置文件及其应用程序的性能。其次,在同时处理多个社交网络和传感器数据时,必须考虑类别间的相关性。第三,在组用户配置文件的上下文中,必须考虑网络间的关系。

著录项

  • 作者

    Farseev, Aleksandr.;

  • 作者单位

    National University of Singapore (Singapore).;

  • 授予单位 National University of Singapore (Singapore).;
  • 学科 Computer science.;Web studies.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 138 p.
  • 总页数 138
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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