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Dynamical Credibility Assessment of Privacy-Preserving Strategy for Opportunistic Mobile Crowd Sensing
Author(s) -
Dapeng Wu,
Lei Fan,
Chenlu Zhang,
Honggang Wang,
Ruyan Wang
Publication year - 2018
Publication title -
ieee access
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.587
H-Index - 127
ISSN - 2169-3536
DOI - 10.1109/access.2018.2847251
Subject(s) - aerospace , bioengineering , communication, networking and broadcast technologies , components, circuits, devices and systems , computing and processing , engineered materials, dielectrics and plasmas , engineering profession , fields, waves and electromagnetics , general topics for engineers , geoscience , nuclear engineering , photonics and electrooptics , power, energy and industry applications , robotics and control systems , signal processing and analysis , transportation
Mobile crowd sensing (MCS) is becoming a popular paradigm to collect information, which has the potential to change people’s life. However, MCS is vulnerable to security threats due to the increasing reliance on communication and computing. The challenges of unique security and privacy caused by MCS include privacy protection, integrity, confidentiality, and availability. To tackle these issues concurrently, we present the design of a dynamical credibility assessment of privacy-preserving (CAPP) strategy, a novel credibility assessment-based solution to protect privacy in opportunistic MCS, which is able to cope with malicious attacks and privacy protection even against intelligent MCS entities. In CAPP, the sensing data are dynamically split into slices and the number of slices is based on the trust of encountered nodes. Specially, node trust is assessed in two dimensions including the quality of contribution trust and social trust, which indicates how likely a node can fulfill its functionality and how trustworthy the relationship between a node and other nodes will be, respectively. Moreover, the secret sharing scheme and an anonymous strategy ensure the data integrity and the anonymity of participants. The effectiveness in privacy protection and efficiency of the proposed scheme are validated through theoretical analysis and numerical results.

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