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Secure Computation of Pearson Correlation Coefficients for High-Quality Data Analytics

机译:用于高质量数据分析的Pearson相关系数的安全计算

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In this paper, we present a secure method of computing Pearson correction coefficients while preserving data privacy as well as data quality in the distributed computing environment. In general data analytical/mining processes, individual data owners need to provide their original data to the third parties. In many cases, however, the original data contain sensitive information, and the data owners do not want to disclose their data in the original form for the purpose of privacy preservation. In this paper, we address a problem of secure multiparty computation of Pearson correlation coefficients. For the secure Pearson correlation computation, we first propose an advanced solution by exploiting the secure scalar product. We then present an approximate solution by adopting the lower-dimensional transformation. We finally empirically show that the proposed solutions are practical methods in terms of execution time and data quality.
机译:在本文中,我们提出了一种在保留分布式计算环境中的数据隐私性和数据质量的同时,计算Pearson校正系数的安全方法。在常规数据分析/挖掘过程中,单个数据所有者需要将其原始数据提供给第三方。但是,在许多情况下,原始数据包含敏感信息,并且数据所有者不想出于保护隐私的目的以原始形式公开其数据。在本文中,我们解决了皮尔逊相关系数的安全多方计算问题。对于安全的Pearson相关计算,我们首先通过利用安全的标量积来提出高级解决方案。然后,我们通过采用低维变换来提出近似解决方案。我们最终从经验上证明,从执行时间和数据质量方面来看,所提出的解决方案是实用的方法。

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