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A New Method on Personalized Privacy Preserving Multi-classification

机译:个性化隐私多分类保护的新方法

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Privacy-preserving data mining has become important since data mining has been widely used in many fields. Various privacy preserving techniques have been proposed to preserve the sensitive data. In this paper, we address two algorithms which can build classifiers accurately with less privacy disclosure in distributed system. These schemes can satisfy the different privacy disclosure level need of every client, which can meet clients' personalized needs. Besides this, our methods can be used for multi-classification.
机译:由于数据挖掘已在许多领域中广泛使用,因此保护隐私的数据挖掘已变得非常重要。已经提出了各种隐私保护技术来保存敏感数据。在本文中,我们提出了两种算法,它们可以在分布式系统中以较少的隐私泄露来准确地建立分类器。这些方案可以满足每个客户不同的隐私公开级别需求,可以满足客户的个性化需求。除此之外,我们的方法可以用于多分类。

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