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DPBSV -- An Efficient and Secure Scheme for Big Sensing Data Stream

机译:DPBSV-大传感数据流的高效安全方案

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摘要

Stream processing has become an important paradigm for the massive real-time processing of continuous data flows in large scale sensor networks. While dealing with big data streams in sensor networks, Stream Processing Engines (SPEs) must always verify the authenticity, and integrity of the data as the medium of communication is untrusted, as malicious attackers could access and modify the data. Existing technologies for data security verification are not suitable for data streaming applications, as the verification in real time introduces significant overheads. In this paper, we propose a Dynamic Prime Number Based Security Verification (DPBSV) scheme for big data stream processing. Our scheme is based on a common shared key that is updated dynamically by generating synchronized pairs of prime numbers. Theoretical analyses and experimental results of our DPBSV scheme show that it can significantly improve the efficiency as compared to existing approaches by reducing the security verification overhead. Our approach not only reduces the verification time, but also strengthens the security of the data by constantly updating the shared keys.
机译:对于大规模传感器网络中连续数据流的大规模实时处理,流处理已成为重要的范例。在处理传感器网络中的大数据流时,流处理引擎(SPE)必须始终验证其真实性,并且不信任作为通信介质的数据完整性,因为恶意攻击者可以访问和修改数据。现有的用于数据安全性验证的技术不适用于数据流应用程序,因为实时验证会带来大量开销。在本文中,我们提出了一种用于大数据流处理的基于动态素数的安全验证(DPBSV)方案。我们的方案基于公共共享密钥,该共享密钥通过生成同步的质数对来动态更新。我们的DPBSV方案的理论分析和实验结果表明,与现有方法相比,它可以通过减少安全验证开销来显着提高效率。我们的方法不仅减少了验证时间,而且通过不断更新共享密钥来增强数据的安全性。

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