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KLPPS: A k-Anonymous Location Privacy Protection Scheme via Dummies and Stackelberg Game

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posted on 2022-01-19, 10:17 authored by Dongdong Yang, Baopeng Ye, Wenyin Zhang, Huiyu Zhou, Xiaobin Qian
Protecting location privacy has become an irreversible trend; some problems also come such as system structures adopted by location privacy protection schemes suffer from single point of failure or the mobile device performance bottlenecks, and these schemes cannot resist single-point attacks and inference attacks and achieve a tradeoff between privacy level and service quality. To solve these problems, we propose a k-anonymous location privacy protection scheme via dummies and Stackelberg game. First, we analyze the merits and drawbacks of the existing location privacy preservation system architecture and propose a semitrusted third party-based location privacy preservation architecture. Next, taking into account both location semantic diversity, physical dispersion, and query probability, etc., we design a dummy location selection algorithm based on location semantics and physical distance, which can protect users’ privacy against single-point attack. And then, we propose a location anonymous optimization method based on Stackelberg game to improve the algorithm. Specifically, we formalize the mutual optimization of user-adversary objectives by using the framework of Stackelberg game to find an optimal dummy location set. The optimal dummy location set can resist single-point attacks and inference attacks while effectively balancing service quality and location privacy. Finally, we provide exhaustive simulation evaluation for the proposed scheme compared with existing schemes in multiple aspects, and the results show that the proposed scheme can effectively resist the single-point attack and inference attack while balancing the service quality and location privacy.

Funding

This study was supported by the Foundation of National Natural Science Foundation of China (grant number: 61 962 009); Major Scientific and Technological Special Project of Guizhou Province (grant number 20 183 001); Science and Technology Support Plan of Guizhou Province (grant number [2020]2Y011); and Foundation of Guangxi Key Laboratory of Cryptography and Information Security (grant number GCIS202118).

History

Citation

Dongdong Yang, Baopeng Ye, Wenyin Zhang, Huiyu Zhou, Xiaobin Qian, "KLPPS: A k-Anonymous Location Privacy Protection Scheme via Dummies and Stackelberg Game", Security and Communication Networks, vol. 2021, Article ID 9635411, 15 pages, 2021. https://doi.org/10.1155/2021/9635411

Author affiliation

School of Informatics

Version

  • VoR (Version of Record)

Published in

Security and Communication Networks

Volume

2021

Pagination

1 - 15

Publisher

Hindawi

issn

1939-0114

eissn

1939-0122

Acceptance date

2021-11-18

Copyright date

2021

Available date

2021-12-07

Language

en

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