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PICM: A practical inference control model for protecting OLAP cubes

机译:PICM:一种实用的推理控制模型,用于保护OLAP多维数据集

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Inference control in Online Analytical Processing (OLAP) systems is employed to protect sensitive data from being inferred while, at the same time, ensuring that legitimate requests can be consistently satisfied. Many models have been proposed, however most of them are suitable for only one type of aggregation, others adopted a detect-and-remove approach, which typically requires complex computations over the data and is thus too expensive to be applied in OLAP systems. In this paper, we present a practical inference control model for protecting OLAP cubes against inference attacks. PICM's has a more general framework; it is applied to any aggregation functions. In addition, PICM eliminates the source of the inference instead of detecting them. This gives a great advantage that the inference checking can, in fact, be carried out without a meaningful impact upon final query execution times.
机译:在线分析处理(OLAP)系统中的推理控制用于防止敏感数据被推理,同时确保可以始终满足合法请求。已经提出了许多模型,但是大多数模型仅适用于一种类型的聚合,其他模型则采用了检测并删除方法,该方法通常需要对数据进行复杂的计算,因此过于昂贵,无法应用于OLAP系统。在本文中,我们提出了一种实用的推理控制模型,用于保护OLAP多维数据集免受推理攻击。 PICM具有更通用的框架;它适用于任何聚合函数。另外,PICM消除了推理的来源,而不是检测到它们。这具有很大的优势,实际上可以执行推理检查,而不会对最终查询的执行时间产生有意义的影响。

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