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An approach for prevention of privacy breach and information leakage in sensitive data mining

机译:一种防止敏感数据挖掘中隐私泄露和信息泄漏的方法

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摘要

Government agencies and many non-governmental organizations often need to publish sensitive data that contain information about individuals. The sensitive data or private data is an important source of information for the agencies like government and non-governmental organization for research and allocation of public funds, medical research and trend analysis. The important problem here is publishing data without revealing the sensitive information of individuals. This sensitive or private information of any individual is essential to several data repositories like medical data, census data, voter registration data, social network data and customer data. In this paper a personalized anonymization approach is proposed which preserves the privacy while the sensitive data is published. The main contributions of this paper are three folds: (i) the definition of the data collection and publication process, (ii) the privacy framework model and (iii) personalized anonymization approach. The experimental analysis is presented at the end; it shows this approach performs better over the distinct l-diversity measure, probabilistic l-diversity measure and k-anonymity with t-closeness measure. (C) 2015 Elsevier Ltd. All rights reserved.
机译:政府机构和许多非政府组织经常需要发布包含有关个人信息的敏感数据。敏感数据或私人数据是政府和非政府组织等机构进行公共资金的研究和分配,医学研究和趋势分析的重要信息来源。这里的重要问题是发布数据时不会泄露个人的敏感信息。任何个人的敏感或私人信息对于几个数据存储库都是必不可少的,例如医疗数据,人口普查数据,选民登记数据,社交网络数据和客户数据。在本文中,提出了一种个性化匿名方法,该方法在发布敏感数据时可保留隐私。本文的主要贡献包括三个方面:(i)数据收集和发布过程的定义,(ii)隐私框架模型和(iii)个性化匿名方法。最后进行了实验分析。它显示了该方法在不同的l多样性测度,概率l多样性测度和带有t紧密度测度的k匿名性上表现更好。 (C)2015 Elsevier Ltd.保留所有权利。

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