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Achieving Incentive, Security, and Scalable Privacy Protection in Mobile Crowdsensing Services

机译:在移动人群感知服务中实现激励,安全和可扩展的隐私保护

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Mobile crowdsensing as a novel service schema of the Internet of Things (IoT) provides an innovative way to implement ubiquitous social sensing. How to establish an effective mechanism to improve the participation of sensing users and the authenticity of sensing data, protect the users’ data privacy, and prevent malicious users from providing false data are among the urgent problems in mobile crowdsensing services in IoT. These issues raise a gargantuan challenge hindering the further development of mobile crowdsensing. In order to tackle the above issues, in this paper, we propose a reliable hybrid incentive mechanism for enhancing crowdsensing participations by encouraging and stimulating sensing users with both reputation and service returns in mobile crowdsensing tasks. Moreover, we propose a privacy preserving data aggregation scheme, where the mediator and/or sensing users may not be fully trusted. In this scheme, differential privacy mechanism is utilized through allowing different sensing users to add noise data, then employing homomorphic encryption for protecting the sensing data, and finally uploading ciphertext to the mediator, who is able to obtain the collection of ciphertext of the sensing data without actual decryption. Even in the case of partial sensing data leakage, differential privacy mechanism can still ensure the security of the sensing user’s privacy. Finally, we introduce a novel secure multiparty auction mechanism based on the auction game theory and secure multiparty computation, which effectively solves the problem of prisoners’ dilemma incurred in the sensing data transaction between the service provider and mediator. Security analysis and performance evaluation demonstrate that the proposed scheme is secure and efficient.
机译:移动人群感知作为物联网(IoT)的一种新颖服务模式,提供了一种实现普遍存在的社会感知的创新方式。如何建立有效的机制来提高感知用户的参与度和感知数据的真实性,保护用户的数据隐私,以及防止恶意用户提供虚假数据,是物联网移动人群感知服务迫在眉睫的问题。这些问题带来了巨大的挑战,阻碍了移动人群感知技术的进一步发展。为了解决上述问题,在本文中,我们提出了一种可靠的混合激励机制,通过鼓励和刺激在移动人群传感任务中具有声誉和服务回报的传感用户来增强人群传感参与。此外,我们提出了一种隐私保护数据聚合方案,在该方案中,调解者和/或感知用户可能未得到完全信任。在该方案中,通过允许不同的传感用户添加噪声数据,然后使用同态加密来保护传感数据,最后将密文上载到介体,从而能够获得传感数据的密文集合,来利用差分隐私机制。没有实际的解密。即使在部分感测数据泄漏的情况下,差分隐私机制仍可以确保感测用户隐私的安全性。最后,我们引入了一种基于拍卖博弈论和安全多方计算的新型安全多方拍卖机制,有效地解决了服务提供商与调解人之间的感知数据交易中的囚徒困境问题。安全分析和性能评估表明,该方案是安全有效的。

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