Privacy-preserving Data Aggregation Computing in Cyber-Physical Social Systems

Author:

Yu Jiahui1,Wang Kun1ORCID,Zeng Deze2,Zhu Chunsheng3,Guo Song4

Affiliation:

1. Nanjing University of Posts and Telecommunications, China

2. China University of Geosciences, China

3. University of British Columbia, Canada

4. The Hong Kong Polytechnic University, China

Abstract

In cyber-physical social systems (CPSS), a group of volunteers report data about the physical environment through their cyber devices and data aggregation is widely utilized. An important issue in data aggregation for CPSS is to protect users’ privacy. In this article, we use bitwise XOR and propose a bit-choosing algorithm to realize privacy-preserving min, k -th min, and percentile computation. By our algorithm, the aggregator can confirm whether a user’s data value is equal to certain value or within certain scale. Consequently, it is also possible to count the number of users satisfying given conditions. Our bit-choosing algorithm makes sure that the users send non-repetition replies to the aggregator to raise the aggregation accuracy. We analyze the communication cost and the achievable accuracy of our algorithm. Via performance comparison against existing protocols, the efficiency and accuracy of our algorithm are verified.

Funder

NSFC

National China 973 Project

China Postdoctoral Science Special Foundation

MIC, Japan

China Postdoctoral Science Foundation

Strategic Information and Communications R8D Promotion Programme

Publisher

Association for Computing Machinery (ACM)

Subject

Artificial Intelligence,Control and Optimization,Computer Networks and Communications,Hardware and Architecture,Human-Computer Interaction

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1. Application of Distributed Constraint Optimization Technique for Privacy Preservation in Cyber-Physical Systems;Intelligent Cyber Physical Systems and Internet of Things;2023

2. DCIV: Decentralized cross-chain data integrity verification with blockchain;Journal of King Saud University - Computer and Information Sciences;2022-11

3. Trust management and data protection for online social networks;IET Communications;2022-05-03

4. Hybrid Privacy Protection of IoT Using Reinforcement Learning;Privacy Preservation in IoT: Machine Learning Approaches;2022

5. Personalized Privacy Protection of IoTs Using GAN-Enhanced Differential Privacy;Privacy Preservation in IoT: Machine Learning Approaches;2022

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