Towards Time-Sensitive and Verifiable Data Aggregation for Mobile Crowdsensing
Author(s) -
Tao Zhang,
Xiongfei Song,
Lele Zheng,
Yani Han,
Kai Zhang,
Qi Li
Publication year - 2021
Publication title -
security and communication networks
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.446
H-Index - 43
eISSN - 1939-0114
pISSN - 1939-0122
DOI - 10.1155/2021/6679157
Subject(s) - computer science , scalability , data aggregator , enhanced data rates for gsm evolution , crowdsensing , verifiable secret sharing , edge computing , encryption , access control , mobile device , reliability (semiconductor) , scheme (mathematics) , computer network , edge device , distributed computing , cloud computing , wireless sensor network , computer security , database , telecommunications , power (physics) , physics , mathematical analysis , set (abstract data type) , mathematics , quantum mechanics , programming language , operating system
Mobile crowdsensing systems use the extraction of valuable information from the data aggregation results of large-scale IoT devices to provide users with personalized services. Mobile crowdsensing combined with edge computing can improve service response speed, security, and reliability. However, previous research on data aggregation paid little attention to data verifiability and time sensitivity. In addition, existing edge-assisted data aggregation schemes do not support access control of large-scale devices. In this study, we propose a time-sensitive and verifiable data aggregation scheme (TSVA-CP-ABE) supporting access control for edge-assisted mobile crowdsensing. Specifically, in our scheme, we use attribute-based encryption for access control, where edge nodes can help IoTdevices to calculate keys. Moreover, IoTdevices can verify outsourced computing, and edge nodes can verify and filter aggregated data. Finally, the security of the proposed scheme is theoretically proved. -e experimental results illustrate that our scheme outperforms traditional ones in both effectiveness and scalability under time-sensitive constraints.
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