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Classification of Privacy-preserving Distributed Data Mining protocols

机译:隐私保护分布式数据挖掘协议的分类

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Recently, a new research area, named Privacy-preserving Distributed Data Mining (PPDDM) has emerged. It aims at solving the following problem: a number of participants want to jointly conduct a data mining task based on the private data sets held by each of the participants. This problem setting has captured attention and interests of researchers, practitioners and developers from the communities of both data mining and information security. They have made great progress in designing and developing solutions to address this scenario. However, researchers and practitioners are now faced with a challenge on how to devise a standard on synthesizing and evaluating various PPDDM protocols, because they have been confused by the excessive number of techniques developed so far. In this paper, we put forward a framework to synthesize and characterize existing PPDDM protocols so as to provide a standard and systematic approach of understanding PPDDM-related problems, analyzing PPDDM requirements and designing effective and efficient PPDDM protocols.
机译:最近,出现了一个名为隐私保护分布式数据挖掘(PPDDM)的新研究领域。它旨在解决以下问题:许多参与者希望基于每个参与者持有的私有数据集来共同执行数据挖掘任务。这个问题的设置引起了数据挖掘和信息安全领域的研究人员,从业人员和开发人员的关注和兴趣。他们在设计和开发解决方案以解决这种情况方面取得了很大的进步。但是,研究人员和从业人员现在面临着如何设计一种用于综合和评估各种PPDDM协议的标准的挑战,因为到目前为止,它们已被开发出的过多技术所困扰。在本文中,我们提出了一个框架,以综合和表征现有的PPDDM协议,从而为理解PPDDM相关问题,分析PPDDM需求以及设计有效的PPDDM协议提供一种标准和系统的方法。

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