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Shear-based spatial transformation to protect proximity attack of cloud data

机译:基于剪切的空间变换可保护云数据的邻近攻击

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Due to the rapid advancement of location based services (LBS), the spatial data has been increased dramatically. Consequently, cloud computing has boost up its importance. Nowadays it is a common practice to upload data into the third party service provider. However, the most important challenge in cloud data is how to meet the privacy requirements and guarantee the integrity of the query result as well. Unfortunately, until now most of existing techniques couldn't support proper data privacy with reasonable execution cost. To carry on data privacy with rational execution cost for the cloud spatial data, we put forward spatial transformation that use shear transformation with rotation and shifting. We describe most important attack model measuring the data privacy of our transformation scheme. In addition, we devise a technique to evaluate the execution cost by the spatial range query. Finally, extensive experiments have demonstrated that our method has excellent performance against attack model for the data privacy with low communication cost.
机译:由于基于位置的服务(LBS)的飞速发展,空间数据已大大增加。因此,云计算提高了它的重要性。如今,将数据上传到第三方服务提供商是一种常见的做法。但是,云数据中最重要的挑战是如何满足隐私要求并确保查询结果的完整性。不幸的是,直到现在,大多数现有技术仍无法以合理的执行成本支持适当的数据隐私。为了以合理的执行成本对云空间数据进行数据保密,我们提出了将剪切变换与旋转和移位结合使用的空间变换。我们描述了最重要的攻击模型,用于衡量我们的转换方案的数据隐私。另外,我们设计了一种通过空间范围查询来评估执行成本的技术。最后,大量实验表明,针对数据隐私的攻击模型,我们的方法具有良好的性能,且通信成本低。

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