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A New Mining and Protection Method Based on Sensitive Data

机译:一种基于敏感数据的采矿与保护新方法

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The traditional method of sensitive data identification for data stream has a large amount of calculation and does not reflect the impact of time on the data value, and the mining accuracy is not high. In view of the above problems we firstly adopt the sliding window mechanism to divide the data flow according to time and delay the dataset according to the characteristics of the data flow in the sliding window to achieve the purpose of saving time and space. At the same time, threshold sensitivity analysis is used to find out the optimal threshold. Finally, a K-anonymous algorithm based on dynamic rounding function is employed to achieve the protection of sensitive data. Theoretical analysis and experimental results show that the algorithm can effectively mine the sensitive data in the data stream and can effectively protect the sensitive data.
机译:传统的数据流敏感数据识别方法计算量大,不能反映时间对数据值的影响,挖掘精度不高。针对上述问题,我们首先采用滑动窗口机制根据时间对数据流进行划分,并根据滑动窗口中数据流的特性来延迟数据集,以达到节省时间和空间的目的。同时,使用阈值敏感性分析来找出最佳阈值。最后,采用基于动态舍入函数的K-匿名算法来实现对敏感数据的保护。理论分析和实验结果表明,该算法可以有效地挖掘数据流中的敏感数据,并可以有效地保护敏感数据。

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