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首页> 外文期刊>International Journal of Distributed Sensor Networks >Secure data deduplication for Internet-of-things sensor networks based on threshold dynamic adjustment
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Secure data deduplication for Internet-of-things sensor networks based on threshold dynamic adjustment

机译:基于阈值动态调整,安全数据重复数据删除传感器网络

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摘要

Large amount of data are being produce by Internet-of-things sensor networks and applications. Secure and efficient deduplication of Internet-of-things data in the cloud is vital to the prevalence of Internet-of-things applications. In order to ensure data security for deduplication, different data should be assigned with different privacy levels. We propose a deduplication scheme based on threshold dynamic adjustment to ensure the security of data uploading and related operations. The concept of the ideal threshold is introduced for the first time, which can be used to eliminate the drawbacks of the fixed threshold in traditional schemes. The item response theory is adopted to determine the sensitivity of different data and their privacy score, which ensures the applicability of data privacy score. It can solve the problem that some users care little about the privacy issue. We propose a privacy score query and response mechanism based on data encryption. On this basis, the dynamic adjustment method of the popularity threshold is designed for data uploading. Experiment results and analysis show that the proposed scheme based on threshold dynamic adjustment has decent scalability and practicability.
机译:使用互联网传感器网络和应用程序产生大量数据。安全有效的重复数据删除云中的互联网数据对于物联网应用的普遍性至关重要。为了确保重复数据删除的数据安全性,应使用不同的隐私级别分配不同的数据。我们提出了一种基于阈值动态调整的重复数据删除方案,以确保数据上传和相关操作的安全性。首次引入了理想阈值的概念,其可用于消除传统方案中固定阈值的缺点。采用项目响应理论来确定不同数据及其隐私评分的敏感性,可确保数据隐私分数的适用性。它可以解决一些用户关心隐私问题的问题。我们提出了一种基于数据加密的隐私分数查询和响应机制。在此基础上,设计了流行阈值的动态调整方法用于数据上传。实验结果和分析表明,基于阈值动态调整的建议方案具有体面的可扩展性和实用性。

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