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An Efficient Way of Anonymization Without Subjecting to Attacks Using Secure Matrix Method

机译:有效的匿名方式,无需使用安全矩阵方法攻击攻击

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摘要

In current times huge data evolving from multiple sources like hospitals, reservation agencies, online transactions, etc. in massive volumes and obtaining in various forms. These data have privacy concerns due to leakage of data. The outgrowths raised in this situation may drive towards anonymization of sensitive identity information. Let a dataset released for the research purpose by removing the identifying attributes and sensitive attributes, but an adversary find to disclose the identity of the individuals by using the quasi-identifiers and non-sensitive data. Anonymization methods are classified into k-Anonymity, 1-diversity, and t-closeness fail in the better way of hiding the data. These techniques lead to a homogeneous attack, background knowledge attack, and similarity attack. In this article, novel method has been proposed based on secure matrix methods for an effective way of hiding the critical data. This technique accepts the non identified data as an input and produces anonymized data as an output without subjecting to attacks. It experimentally produces better results in anonymizing the data with less execution time.
机译:在当前倍的巨大数据从多个来源等多种来源发展,如大规模卷中的多个来源,并以各种形式获得。由于数据泄漏,这些数据具有隐私问题。在这种情况下提出的生长可能导致敏感身份信息的匿名化。让DataSet通过删除识别属性和敏感属性来释放用于研究目的,但是通过使用准标识符和非敏感数据来披露个人的身份。匿名化方法被分类为k-匿名,1个分集,并且T-closeness以更好的隐藏数据的方式失败。这些技术导致均匀的攻击,背景知识攻击和相似性攻击。在本文中,已经基于安全矩阵方法提出了新的方法,以实现关键数据的有效方法。该技术接受非标识数据作为输入,并在不受攻击的情况下产生作为输出的匿名数据。它在实验上产生了更好的结果,在较少的执行时间匿名中匿名。

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