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Data Mining and Privacy of Social Network Sites' Users: Implications of the Data Mining Problem

机译:社交网站用户的数据挖掘和隐私:数据挖掘问题的含义

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This paper explores the potential of data mining as a technique that could be used by malicious data miners to threaten the privacy of social network sites (SNS) users. It applies a data mining algorithm to a real dataset to provide empirically-based evidence of the ease with which characteristics about the SNS users can be discovered and used in a way that could invade their privacy. One major contribution of this article is the use of the decision forest data mining algorithm (SysFor) to the context of SNS, which does not only build a decision tree but rather a forest allowing the exploration of more logic rules from a dataset. One logic rule that SysFor built in this study, for example, revealed that anyone having a profile picture showing just the face or a picture showing a family is less likely to be lonely. Another contribution of this article is the discussion of the implications of the data mining problem for governments, businesses, developers and the SNS users themselves.
机译:本文探讨了数据挖掘作为一种可能被恶意数据挖掘者用来威胁社交网站(SNS)用户隐私的技术的潜力。它将数据挖掘算法应用于真实数据集,以提供基于经验的证据,证明可以轻松地发现和使用SNS用户的特征,从而侵犯其隐私。本文的一个主要贡献是在SNS上下文中使用了决策森林数据挖掘算法(SysFor),该算法不仅可以构建决策树,而且还可以构建允许从数据集中探索更多逻辑规则的森林。例如,SysFor在这项研究中建立的一条逻辑规则表明,只有个人头像只显示面部或家庭成员的人,寂寞的可能性较小。本文的另一个贡献是讨论了数据挖掘问题对政府,企业,开发人员和SNS用户本身的影响。

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