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Set-Based Adaptive Distributed Differential Evolution for Anonymity-Driven Database Fragmentation

机译:基于集基的自适应分布式差分差分演进,用于匿名驱动的数据库碎片

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摘要

By breaking sensitive associations between attributes, database fragmentation can protect the privacy of outsourced data storage. Database fragmentation algorithms need prior knowledge of sensitive associations in the tackled database and set it as the optimization objective. Thus, the effectiveness of these algorithms is limited by prior knowledge. Inspired by the anonymity degree measurement in anonymity techniques such as k -anonymity, an anonymity-driven database fragmentation problem is defined in this paper. For this problem, a set-based adaptive distributed differential evolution (S-ADDE) algorithm is proposed. S-ADDE adopts an island model to maintain population diversity. Two set-based operators, i.e., set-based mutation and set-based crossover, are designed in which the continuous domain in the traditional differential evolution is transferred to the discrete domain in the anonymity-driven database fragmentation problem. Moreover, in the set-based mutation operator, each individual’s mutation strategy is adaptively selected according to the performance. The experimental results demonstrate that the proposed S-ADDE is significantly better than the compared approaches. The effectiveness of the proposed operators is verified.
机译:通过在属性之间断开敏感的关联,数据库碎片可以保护外包数据存储的隐私。数据库碎片算法需要先前了解在解决的数据库中的敏感关联,并将其设置为优化目标。因此,这些算法的有效性受到先前知识的限制。灵感灵感来自匿名技术的匿名度测量,例如k-anonymity,在本文中定义了匿名驱动的数据库碎片问题。对于此问题,提出了一种基于集基的自适应分布式差分演进(S-ADDE)算法。 S-Adde采用岛屿模型来维持人口多样性。设计了两种基于集的运算符,即基于集的突变和基于集的交叉,其中传统差分演进中的连续域被传输到匿名驱动的数据库碎片问题中的离散域。此外,在基于集合的突变运算符中,根据性能自适应地选择每个单独的突变策略。实验结果表明,所提出的S adde明显优于比较的方法。验证了拟议的运营商的有效性。

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