Preserving Private Cloud Service Data Based on Hypergraph Anonymization

Yuechuan Li, Yidong Li, Baopeng Zhang, Hong Shen
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引用次数: 2

Abstract

Cloud computing is becoming increasingly popular due to its power in providing high-performance and flexible service capabilities. More and more internet users have accepted this innovative service model and been using various cloud-based services every day. However, these service-using data is quite valuable for marketing purposes, as it can reflect a user's interest and service-using pattern. Therefore, the privacy issues have been brought out. Recently, many studies focus on access control and other traditional security problems in cloud, and little studied on the topic of the private service data publishing. In this paper, we study the private service data publishing problem by representing the data with a hyper graph, which is quite efficient to illustrate complex relationships among users. We first formulate the problem with a popular background knowledge attack model named rank attack, and then provide an anonymization-based method to prevent the released data from such attacks. We also take data utility into consideration by defining specific information loss metrics. The performances of the methods have been validated by two sets of synthetic data.
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基于超图匿名化的私有云服务数据保存
由于云计算在提供高性能和灵活的服务能力方面的强大能力,它正变得越来越流行。越来越多的互联网用户接受了这种创新的服务模式,每天都在使用各种基于云的服务。然而,这些服务使用数据对于营销目的非常有价值,因为它可以反映用户的兴趣和服务使用模式。因此,隐私问题被提了出来。目前的研究多集中在云中的访问控制等传统安全问题上,而对私有服务数据发布的研究较少。本文研究了私有服务数据发布问题,用超图表示数据,这种方法可以很好地描述用户之间的复杂关系。我们首先用一种流行的背景知识攻击模型——秩攻击来表述问题,然后提出一种基于匿名化的方法来防止泄露的数据受到秩攻击。我们还通过定义特定的信息丢失度量来考虑数据效用。通过两组合成数据验证了方法的有效性。
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