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Mining of marital distress from microblogging social networks: A case study on Sina Weibo

机译:从微博社交网络挖掘婚姻困扰:以新浪微博为例

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摘要

Marital distress, occurring when a married person encounters a profound sense of disappointment or doubts about staying married, has been regarded as the causes of many risks, including child behavior, economic stability and problems with mental and physical health. Therefore, it is important to discover the people with marital distress and take proactive measures accordingly. Traditional approaches of discovering marital distress are subjective by using self-reports, interviews and questionnaires, which are limited to data scale and error-prone in the early stage. In the era of big data, it is easy to apply efficient machine learning based approaches on massive social data. Therefore, we propose a novel model, named Discovering Marital Distress (DMD), to discover the crowds with marital distress, where there are four components, i.e., Personal Profile, Daily Posting Habits, Interactive Behaviors and Emotion Measure. The experimental results demonstrate that the proposed DMD model is effective on the issue of finding persons with marital distress, with precision of96.5%and recall of96.4%. And through contrast experiments, it is found that the persons with marital distress update their micro-blog more frequently and mostly at dead of night, and the content of these posts are long and negative almost without pictures.
机译:婚姻困扰发生在已婚者对婚姻感到深深的失望或怀疑时,被认为是造成许多风险的原因,包括儿童行为,经济稳定以及身心健康问题。因此,发现遇难者并采取相应措施很重要。传统的发现婚姻困扰的方法是通过使用自我报告,访谈和问卷调查来主观判断的,这些方法仅限于早期的数据规模和容易出错的情况。在大数据时代,很容易在大量社交数据上应用基于有效机器学习的方法。因此,我们提出了一种新颖的模型,名为发现婚姻困扰(DMD),以发现具有婚姻困扰的人群,该人群包含四个组成部分,即个人资料,日常发帖习惯,互动行为和情绪测度。实验结果表明,所提出的DMD模型在发现婚内遇难者方面是有效的,准确率达96.5%,召回率达96.4%。通过对比实验发现,遇难者的微博更新频率更高,而且大多是在深夜,而这些帖子的内容又长又消极,几乎没有图片。

著录项

  • 来源
    《Future generation computer systems》 |2018年第9期|1481-1490|共10页
  • 作者单位

    State Key Laboratory of Virtual Reality Technology and Systems, School of Computer Science and Engineering, Beihang University;

    State Key Laboratory of Virtual Reality Technology and Systems, School of Computer Science and Engineering, Beihang University;

    State Key Laboratory of Virtual Reality Technology and Systems, School of Computer Science and Engineering, Beihang University;

    State Key Laboratory of Virtual Reality Technology and Systems, School of Computer Science and Engineering, Beihang University;

    School of Computer Science, University of Oklahoma;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Marital distress; Big data; Social networks; Microblogs;

    机译:婚姻困扰;大数据;社交网络;微博;

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