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Chorus: a Programming Framework for Building Scalable Differential Privacy Mechanisms

机译:合唱:用于构建可扩展的差异隐私机制的编程框架

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摘要

Differential privacy is fast becoming the gold standard in enabling statistical analysis of data while protecting the privacy of individuals. However, practical use of differential privacy still lags behind research progress because research prototypes cannot satisfy the scalability requirements of production deployments. To address this challenge, we present Chorus, a framework for building scalable differential privacy mechanisms which is based on cooperation between the mechanism itself and a high-performance production database management system (DBMS). We demonstrate the use of Chorus to build the first highly scalable implementations of complex mechanisms like Weighted PINQ, MWEM, and the matrix mechanism. We report on our experience deploying Chorus at Uber, and evaluate its scalability on real-world queries.
机译:在保护个人隐私的同时,进行数据统计分析时,差异隐私正迅速成为金标准。但是,由于研究原型无法满足生产部署的可伸缩性要求,因此实际使用差异隐私仍然落后于研究进度。为了解决这一挑战,我们介绍了Chorus,这是一个用于构建可扩展的差异隐私机制的框架,该框架基于该机制本身与高性能生产数据库管理系统(DBMS)之间的协作。我们演示了使用Chorus构建复杂机制(如加权PINQ,MWEM和矩阵机制)的第一个高度可扩展的实现。我们报告了我们在Uber部署Chorus的经验,并评估了其在实际查询中的可伸缩性。

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