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Performing privacy-preserving multi-party analytics on horizontally partitioned local data

机译:对水平分区的本地数据执行保护隐私的多方分析

摘要

Examples disclosed herein relate to: computing, by a computing device at a party among a plurality of parties, a sum of local data owned by the party. The local data is horizontally partitioned into a plurality of data segments, with each data segment representing a non-overlapping subset of data entries owned by a particular party; computing a local gradient based on the horizontally partitioned local data; initializing each data segment; anonymizing aggregated local gradients received from the mediator, wherein the aggregated local gradients comprise gradients computed based on a plurality of data entries owned by the plurality of parties; receiving, from a mediator, a global gradient based on the aggregated local gradients; learning a global analytic model based on the global gradient; and performing privacy-preserving multi-party analytics on the horizontally partitioned local data based on the learned global analytic model.
机译:本文公开的示例涉及:由多个参与方中的一个参与方的计算设备计算该参与方拥有的本地数据的总和。本地数据被水平划分为多个数据段,每个数据段代表特定方拥有的数据条目的不重叠子集;根据水平划分的局部数据计算局部梯度;初始化每个数据段;匿名化从中介器接收到的聚合局部梯度,其中,聚合局部梯度包括基于多个参与方拥有的多个数据条目计算出的梯度;从调解员接收基于聚集的局部梯度的全局梯度;学习基于全局梯度的全局分析模型;然后根据学习到的全局分析模型对水平划分的本地数据执行保护隐私的多方分析。

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