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Restricted Sensitive Attributes-based Sequential Anonymization (RSA-SA) approach for privacy-preserving data stream publishing

机译:基于受限敏感属性的顺序匿名化(RSA-SA)方法,用于保护隐私的数据流发布

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摘要

Data streams have become a widely-adopted data representation format in many real-world applications. This data streaming may be published for different scientific research, mining, or analysis purposes. However, such streams may contain personal-specific data that could be considered as sensitive about individuals. This makes the privacy preserving of data streams against privacy disclosure attacks, while maintaining their utilization, is a real challenge. Some studies have considered privacy-preserving publishing over data streams with only Single Sensitive Attribute, in which they do not protect the published streams from all possible privacy attacks. In this paper, we propose a novel Restricted Sensitive Attributes-based Sequential Anonymization (RSA-SA) approach for privacy-preserving data stream publishing. Besides, two new privacy restrictions are introduced to restrict the published Sensitive Attributes values: Semantic-diversity and Sensitivity-diversity. RSA-SA can protect the sensitive values of the published data streams against the related privacy attacks, including the attribute disclosure, skewness, similarity, and sensitivity attacks. In addition, RSA-SA handles data streams that have either single or multiple sensitive attributes with minimum information loss and delay time. Thus, the data utility of the published data streams is efficiently maintained to provide more accurate mining and analytical results, where robust invulnerability to privacy attacks is sustained.
机译:数据流已成为许多实际应用中广泛采用的数据表示格式。可以为不同的科学研究,挖掘或分析目的发布此数据流。但是,此类流可能包含可以视为对个人敏感的个人特定数据。这使得在保护数据流免受隐私泄露攻击的同时保持其利用率是一个真正的挑战。一些研究已经考虑了仅具有“单一敏感属性”的数据流上保留隐私的发布,在这种情况下,它们并不能保护已发布的流免受所有可能的隐私攻击。在本文中,我们提出了一种新颖的基于受限敏感属性的顺序匿名化(RSA-SA)方法,用于保护隐私的数据流发布。此外,引入了两个新的隐私限制来限制已发布的敏感属性值:语义多样性和敏感度多样性。 RSA-SA可以保护已发布数据流的敏感值免受相关的隐私攻击,包括属性泄露,偏度,相似性和敏感度攻击。此外,RSA-SA处理具有单个或多个敏感属性的数据流,同时将信息丢失和延迟时间降至最低。因此,有效地维护了已发布数据流的数据实用程序,以提供更准确的挖掘和分析结果,从而保持了对隐私攻击的强大抵抗力。

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