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PRIVACY-ENHANCED DECISION TREE-BASED INFERENCE ON HOMOMORPHICALLY-ENCRYPTED DATA

机译:基于隐私的决策树基于同名式加密数据的推断

摘要

A technique for computationally-efficient privacy-preserving homomorphic inferencing against a decision tree. Inferencing is carried out by a server against encrypted data points provided by a client. Fully homomorphic computation is enabled with respect to the decision tree by intelligently configuring the tree and the real number-valued features that are applied to the tree. To that end, and to the extent the decision tree is unbalanced, the server first balances the tree. A cryptographic packing scheme is then applied to the balanced decision tree and, in particular, to one or more entries in at least one of: an encrypted feature set, and a threshold data set, that are to be used during the decision tree evaluation process. Upon receipt of an encrypted data point, homomorphic inferencing on the configured decision tree is performed using a highly-accurate approximation comparator, which implements a “soft” membership recursive computation on real numbers, all in an oblivious manner.
机译:一种用于计算决策树的计算上有效的隐私保护的技术。通过服务器针对客户端提供的加密数据点来执行推理。通过智能配置树和应用于树的实际数字值的功能,对决策树的启用完全同性全重计算。为此,并在决策树不平衡的范围内,服务器首先均衡树。然后将加密包装方案应用于平衡决策树,特别是在决策树评估过程中要使用的加密特征集和阈值数据集中的一个或多个条目。 。在接收到加密数据点时,使用高度准确的近似比较器执行配置的决策树上的同态推理,其在真实数字上实现“软”递归计算,所有这些都以不知情的方式实现。

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