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Resolve the Classification Problem on Secure Encrypted Relational Data

机译:解决安全加密关系数据的分类问题

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Data mining is a powerful new technique to discover knowledge within the large amount of the data. A number of theoretical and practical solutions to query processing have been proposed under various scenarios. With the recent popularity of cloud computing, data owners now have the opportunity to outsource not only their data but also data processing functionalities to the cloud. Because of data security and personal privacy concerns, sensitive data (e.g., medical records) should be encrypted before being outsourced to a cloud, and the cloud should perform query processing tasks on the encrypted data only. These tasks are termed as Privacy Preserving Query Processing (PPQP) over encrypted data. These protocols protect the confidentiality of the stored data, user queries, and data access patterns from cloud service providers and other unauthorized users. Several queries were considered in an attempt to create a well-defined scope. These queries included the k-Nearest Neighbor (kNN) query, advanced analytical query, and correlated range query. This paper presents protocols utilize an additive cryptography base privacy preserving data mining technique at different stages of query processing to achieve the best performance all computations can be done on the encrypted data.
机译:数据挖掘是一种强大的新技术,可以在大量数据中发现知识。在各种场景下提出了许多对查询处理的理论和实用解决方案。随着云计算的普及,数据所有者现在不仅有机会外包,而且有机会外包,而且还有数据处理云的数据处理功能。由于数据安全和个人隐私问题,应在外包到云之前加密敏感数据(例如,医疗记录),并且云应仅在加密数据上执行查询处理任务。这些任务被称为隐私保留查询处理(PPQP)通过加密数据。这些协议保护云服务提供商和其他未授权用户的存储数据,用户查询和数据访问模式的机密性。尝试创建一个明确的范围,考虑了几个查询。这些查询包括K-Collect邻居(knn)查询,高级分析查询和相关范围查询。本文提出了协议利用添加剂加密基础隐私保留数据挖掘技术,在查询处理的不同阶段以实现最佳性能,所有计算都可以在加密数据上完成。

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