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Distributed Differential Evolution for Anonymity-Driven Vertical Fragmentation in Outsourced Data Storage

机译:用于匿名驱动的外包数据存储中匿名驱动的垂直碎片的分布式差分演进

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Vertical fragmentation is a promising technique for outsourced data storage. It can protect data privacy while conserving original data without any transformation. Previous vertical fragmentation approaches need to predefine sensitive associations in data as the optimization objective, therefore unavailable for the data lacking related prior knowledge. Inspired by the anonymity measurement in anonymity approaches such as k-anonymity, an anonymity-driven vertical fragmentation problem is defined in this paper. To tackle this problem, a set-based distributed differential evolution (S-DDE) algorithm is proposed. An island model containing four sub-populations is adopted to improve population diversity and search efficiency. Two set-based update operators, i.e., set-based mutation operator and set-based crossover operator, are designed to transfer the calculation of discrete values to corresponding sets in vertical fragmentation. Extensive experiments are carried out, and the performance of S-DDE on anonymity-driven vertical fragmentation is verified. The computation efficiency of S-DDE is investigated, and the effectiveness of the generated vertical fragmentation solution by S-DDE is confirmed.
机译:垂直碎片是外包数据存储的有希望的技术。它可以保护数据隐私,同时保存原始数据而无需任何转换。以前的垂直碎片方法需要将数据中的敏感关联预定义为优化目标,因此对于缺乏相关的先验知识的数据不可用。灵感来自匿名方法的匿名测量,例如k-匿名,在本文中定义了匿名驱动的垂直碎片问题。为了解决这个问题,提出了一种基于集基的分布式差分演进(S-DDE)算法。采用包含四个子群体的岛屿模型来提高人口多样性和搜救效率。基于SET的更新运算符,即基于集基于集的突变算子和基于集的交叉运算符,旨在将离散值的计算转移到垂直碎片中的对应集。进行了广泛的实验,验证了S-DDE对匿名驱动的垂直碎片的性能。研究了S-DDE的计算效率,确认了S-DDE产生的垂直碎片溶液的有效性。

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