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Linear Function Based Transformation Scheme for Preserving Database Privacy in Cloud Computing

机译:云计算中基于线性函数的数据库保密转换方案

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Because much interest in spatial database in cloud computing has been attracted, studies on preserving location data privacy in cloud computing have been actively done. However, since the existing spatial transformation schemes are weak to proximity attack, they cannot preserve the privacy of users who enjoy location-based services from the cloud computing. Therefore, a transformation scheme for providing a safe service to users is required. So, we, in this paper, propose a new transformation scheme based on a line symmetric transformation (LST). The proposed scheme performs both LST-based data distribution and error injection transformation for preventing proximity attack effectively. Finally, we show from our performance analysis that the proposed scheme greatly reduces the success rate of the proximity attack while performing the spatial transformation in an efficient way.
机译:因为已经引起了对云计算中的空间数据库的极大兴趣,所以已经积极地进行了关于在云计算中保护位置数据隐私的研究。但是,由于现有的空间变换方案不易受到邻近攻击,因此它们无法保护从云计算中享受基于位置的服务的用户的隐私。因此,需要一种用于向用户提供安全服务的转换方案。因此,在本文中,我们提出了一种基于线对称变换(LST)的新变换方案。所提出的方案同时执行基于LST的数据分发和错误注入转换,以有效地防止邻近攻击。最后,从性能分析中可以看出,所提出的方案在有效地执行空间变换的同时,极大地降低了邻近攻击的成功率。

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