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Privacy preserving and performance analysis on not only SQL database aggregation in bigdata era

机译:大数据时代不仅针对SQL数据库聚合的隐私保护和性能分析

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Database management systems have been indispensable to enterprises for decades. As the amount of data dramatically increased, database aggregation has encountered a dilemma between privacy and performance. In traditional database aggregation, all attributes have been encrypted to protect the privacy of data. However, in big data, this privacy measure is no longer feasible because cryptography will degrade the system performance. Therefore, a database aggregation scheme that not only protects privacy but also delivers high performance is in need. In this study, we propose a partial encryption method that identifies the most important privacy attributes during database aggregation in order to provide both privacy protection and good performance. In addition, we study the performance differences of our method when deployed on both traditional SQL databases and Not Only SQL (NoSQL) databases (HBase and Cassandra), by using Yahoo! Cloud Service Benchmark (YCSB) for performance evaluation. Our experiments provided guidance for future developers to consider the tradeoff between privacy and performance in different database systems for big data analytics.
机译:数据库管理系统几十年来对于企业来说是必不可少的。随着数据量的急剧增加,数据库聚合遇到了隐私和性能之间的难题。在传统的数据库聚合中,所有属性均已加密,以保护数据的私密性。但是,在大数据中,这种保密措施不再可行,因为加密会降低系统性能。因此,需要一种既能保护隐私又能提供高性能的数据库聚合方案。在这项研究中,我们提出了一种部分加密方法,该方法可在数据库聚合过程中识别出最重要的隐私属性,以便同时提供隐私保护和良好的性能。此外,通过使用Yahoo !,我们研究了在传统SQL数据库和仅SQL(NoSQL)数据库(HBase和Cassandra)上部署方法时,该方法的性能差异。用于性能评估的云服务基准(YCSB)。我们的实验为将来的开发人员提供指导,以考虑在大数据分析的不同数据库系统中隐私和性能之间的权衡。

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