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Simple data transformation method for privacy preserving data re-publication

机译:简单数据转换方法,用于保留数据重新发布

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As growing interest in data publishing and analysis, privacy preserving data publication has become more important today. When a table containing the sensitive information is published, privacy of each individual should be protected. On the other hand, a data holder also considers minimizing information loss for analysis as long as the privacy is preserved. A few years ago, k-anonymity and l-diversity models have been suggested in order to protect privacy. However, these solutions are limited to static data release. Recently, the m-invariance model has been proposed to apply publication of dynamic environments. However, m-invariance generalization technique causes high information loss. In this paper, we propose a simple and safe anonymization technique without generalization while assuring high data utility in dynamic environments.
机译:随着对数据发布和分析的兴趣日益增长,隐私保存数据出版物今天变得更加重要。当包含敏感信息的表发布时,应保护每个人的隐私。另一方面,只要保留隐私“,数据持有者还考虑最小化信息丢失进行分析。几年前,已经建议k-匿名和l-多样性模型来保护隐私。但是,这些解决方案仅限于静态数据释放。最近,已经提出了M-Invariance模型来应用动态环境的出版物。但是,M-Invariance泛化技术会导致高信息丢失。在本文中,我们提出了一种简单而安全的匿名化技术,无需泛化,同时确保动态环境中的高数据实用性。

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