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A new efficient privacy-preserving data publish-subscribe scheme

机译:一种新的高效保护数据发布 - 订阅方案

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摘要

Data publish-subscribe is an efficient service for users to share and receive data selectively. Due to the powerful computing resources and storage capacity, the cloud platform is considered as the most appropriate choice to publish and subscribe large-scale data generated in real-world life. However, the cloud platform may be curious about the content of published data and subscribers' interests. In this paper, we aimed at realising a secure and efficient privacy-preserving data publish-subscribe scheme on cloud platforms. On one hand, we adopt ciphertext-policy attribute-based encryption (CPABE) to encrypt the data based on it's access policy. Moreover, part of the decryption computation is shifted to the cloud platform to reduce subscribers' computation overhead. On the other hand, we utilise an efficient searchable encryption scheme based on Bloom Filter tree (BFtree) to protect subscribers' privacy and match their interests with encrypted data. Not only that, publishers and subscribers can also exchange their roles in our scheme. The security analysis and experimental results prove that our scheme is efficient and secure in privacy-preserving data publish-subscribe service.
机译:Data Publish-Subscribe是一个有效的服务,供用户选择性地共享和接收数据。由于强大的计算资源和存储容量,云平台被认为是发布和订阅在现实世界中生成的大规模数据的最合适的选择。但是,云平台可能很好奇,关于发布的数据和订阅者的兴趣。在本文中,我们旨在实现云平台上的安全有效的隐私保留数据发布 - 订阅方案。一方面,我们采用基于密文 - 策略属性的加密(CPABE)来基于它的访问策略来加密数据。此外,部分解密计算被移位到云平台以减少订户的计算开销。另一方面,我们利用了基于Bloom Filter Tree(BFTree)的有效可搜索的加密方案来保护订阅者的隐私并与加密数据匹配它们的兴趣。不仅,出版商和订阅者也可以在我们的计划中交换他们的角色。安全性分析和实验结果证明我们的计划在隐私保留数据发布 - 订阅服务中是有效和安全的。

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