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Privacy-preserving Data Retrieval using Anonymous Query Authentication in Data Cloud Services

机译:使用数据云服务中的匿名查询身份验证保留隐私数据检索

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Recently, cloud computing became an essential part of most IT strategies. However, security and privacy issues are still the two main concerns that limit the widespread use of cloud services since the data is stored in unknown locations and retrieval of data (or part of it) may involve disclosure of sensitive data to unauthorized parties. Many techniques have been proposed to handle this problem, which is known as Privacy-Preserving Data Retrieval (PPDR). These techniques attempt to minimize the sensitive data that needs to be revealed. However, revealing any data to an unauthorized party breaks the security and privacy concepts and also may decrease the efficiency of the data retrieval. In this paper, different requirements are defined to satisfy a high level of security and privacy in a PPDR system. Moreover, a technique that uses anonymous query authentication and multi-server settings is proposed. The technique provides an efficient ranking-based data retrieval by using weighted Term Frequency-Inverse Document Frequency (TF-IDF) vectors. It also satisfies all of the defined security requirements that were completely unsatisfied by the techniques reported in the literature.
机译:最近,云计算成为大多数IT战略的重要组成部分。但是,安全和隐私问题仍然是限制云服务广泛使用的两个主要问题,因为数据存储在未知位置并检索数据(或其中一部分)中可能涉及将敏感数据的披露到未授权的方。已经提出了许多技术来处理这个问题,这被称为隐私保留数据检索(PPDR)。这些技术试图最小化需要揭示的敏感数据。但是,向未经授权的方向任何数据揭示安全和隐私概念,也可能降低数据检索的效率。在本文中,定义了不同的要求,以满足PPDR系统中的高度安全性和隐私。此外,提出了一种使用匿名查询身份验证和多服务器设置的技术。该技术通过使用加权术语频率 - 逆文档频率(TF-IDF)向量提供了基于基于排名的数据检索。它还满足了文献中报告的技术完全不满意的所有定义安全要求。

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