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Solving bin-packing problems under privacy preservation: Possibilities and trade-offs

机译:解决隐私保护下的垃圾箱问题:可能性和权衡

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We investigate the trade-off between privacy and solution quality that occurs when a k-anonymized database is used as input to the bin-packing optimization problem. To investigate the impact of the chosen anonymization method on this trade-off, we consider two recoding methods for k-anonymity: full-domain generalization and partition-based single-dimensional recoding. To deal with the uncertainty created by anonymization in the bin-packing problem, we utilize stochastic programming and robust optimization methods. Our computational results show that the trade-off is strongly dependent on both the anonymization and optimization method. On the anonymization side, we see that using single dimensional recoding leads to significantly better solution quality than using full domain generalization. On the optimization side, we see that using stochastic programming, where we use the multiset of values in an equivalence class, considerably improves the solutions. While publishing these multisets makes the database more vulnerable to a table linkage attack, we argue that it is up to the data publisher to reason if such a loss of anonymization weighs up to the increase in optimization performance. (C) 2019 Published by Elsevier Inc.
机译:我们调查隐私和解决方案质量之间的权衡,当K-Anymyized数据库被用作Bin Packing优化问题的输入时发生。要调查所选择的匿名方法对此权衡的影响,我们考虑了两个重新编码的k-匿名方式:全域泛化和基于分区的单维重新编码。要处理在垃圾箱问题中匿名化创建的不确定性,我们利用随机编程和鲁棒优化方法。我们的计算结果表明,权衡强烈依赖于匿名化和优化方法。在匿名化方面,我们看到,使用单维重读导致的解决方案质量明显更好,而不是使用全域泛化。在优化方面,我们看到使用随机编程,在那里我们在等价类中使用多重值,大大提高了解决方案。在发布这些Multisets时,数据库会使数据库更容易受到表的联系攻击,我们认为,如果这样的匿名化丢失的原因,它会导致数据发布者重视优化性能的增加。 (c)2019由elsevier公司出版

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