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Efficient Privacy-Preserving Aggregation Scheme for Data Sets

机译:高效的数据隐私保护聚合方案

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Many applications depend on privacy-preserving data aggregation schemes to preserve users' privacy. The main idea is that no entity should be able to access users' individual data to preserve privacy, but the aggregated data should be known for the application functionality. In these schemes, each user should encrypt a message and send it to an aggregator to compute and send the ciphertext of the aggregated messages to the decryptor without learning the individual messages. The decryptor should decrypt the ciphertext to obtain the aggregated message. However, the existing schemes are designed to aggregate one type/size of data and it is inefficient to modify them to aggregate messages that have data sets of different data types and sizes. In this paper, we propose an efficient privacy-preserving aggregation scheme for data sets. Unlike the existing schemes that do multibit number addition, the proposed scheme aggregates individual bits. Moreover, comparing to the existing schemes, our scheme has two new features. First, in some applications (such as those that need reporting location information), the aggregator can verify the encrypted messages to detect data pollution attacks without accessing the messages to preserve privacy. Second, our scheme has two types of decryptions; called full and partial. In full decryption, the decryptor can decrypt the whole data set, while in partial decryption, the decryptor can enable some entities to decrypt some data in the set. Our analysis demonstrates that the proposed scheme is secure and can preserve users' privacy. Extensive experimental results demonstrate that our scheme is more efficient than the existing schemes.
机译:许多应用程序都依赖保留隐私的数据聚合方案来保留用户的隐私。主要思想是,任何实体都不应能够访问用户的个人数据以保护隐私,但应了解应用程序功能的汇总数据。在这些方案中,每个用户都应该对消息进行加密,然后将其发送给聚合器,以计算聚合后的消息的密文并将其发送给解密器,而无需学习单个消息。解密器应解密密文以获得聚合的消息。但是,现有方案被设计为聚合一种类型/大小的数据,修改它们以聚合具有不同数据类型和大小的数据集的消息效率不高。在本文中,我们提出了一种有效的数据隐私保护聚合方案。与现有的进行多位数加法的方案不同,该方案汇总了单个位。而且,与现有方案相比,我们的方案具有两个新特征。首先,在某些应用程序(例如需要报告位置信息的应用程序)中,聚合器可以验证加密的消息以检测数据污染攻击,而无需访问消息来保护隐私。其次,我们的方案有两种类型的解密:称为全部和部分。在完全解密中,解密器可以解密整个数据集,而在部分解密中,解密器可以使某些实体能够解密该数据集中的某些数据。我们的分析表明,提出的方案是安全的,可以保留用户的隐私。大量的实验结果表明,我们的方案比现有方案更有效。

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