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State-of-the-art in Privacy Preserved K-anonymity Revisited

机译:隐私保留K-匿名性的最新技术

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摘要

The prevalent conditions in data sharing and mining have necessitated the release and revelation of certain vulnerable private information. Thus the preservation of privacy has become an eminent field of study in data security. In addressing this issue, K-anonymity is amongst the most reliable and valid algorithms used for privacy preservation in data mining. It is ubiquitously used in myriads of fields in recent years for its characteristic effective prevention ability towards the loss of vulnerable information under linking attacks. This study presents the basic notions and deep-insight of the existing privacy preserved K-anonymity model and its possible enhancement. Furthermore, the present challenges, excitements and future progression of privacy preservation in K-anonymity are emphasized. Moreover, this study is grounded on the fundamental ideas and concepts of the existing K-anonymity privacy preservation, K-anonymity model and enhanced the K-anonymity model. Finally, it extracted the developmental direction bf privacy preservation in K-anonymity.
机译:数据共享和挖掘中普遍存在的条件使得必须发布和披露某些易受攻击的私人信息。因此,保护​​隐私已成为数据安全研究的重要领域。为了解决这个问题,K-匿名性是用于数据挖掘中的隐私保护的最可靠,最有效的算法之一。近年来,由于其针对链接攻击下易受攻击的信息丢失的有效预防能力,该技术在无数领域中得到了广泛应用。这项研究提出了现有的隐私保留K-匿名模型的基本概念和深刻见解及其可能的增强。此外,强调了匿名性保护中隐私保护的当前挑战,兴奋和未来发展。此外,本研究基于现有的K-匿名性隐私保护,K-匿名性模型和增强的K-匿名性模型的基本思想和概念。最后,提取了K匿名用户隐私保护的发展方向。

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