Knowledge-Driven Location Privacy Preserving Scheme for Location-Based Social Networks

Author:

Zhu LiangORCID,Liu XiaoweiORCID,Jing Zhiyong,Yu Liping,Cai Zengyu,Zhang Jianwei

Abstract

Location privacy-preserving methods for location-based services in mobile communication networks have received great attention. Traditional location privacy-preserving methods mostly focus on the researches of location data analysis in geographical space. However, there is a lack of studies on location privacy preservation by considering the personalized features of users. In this paper, we present a Knowledge-Driven Location Privacy Preserving (KD-LPP) scheme, in order to mine user preferences and provide customized location privacy protection for users. Firstly, the UBPG algorithm is proposed to mine the basic portrait. User familiarity and user curiosity are modelled to generate psychological portrait. Then, the location transfer matrix based on the user portrait is built to transfer the real location to an anonymous location. In order to achieve customized privacy protection, the amount of privacy is modelled to quantize the demand of privacy protection of target user. Finally, experimental evaluation on two real datasets illustrates that our KD-LPP scheme can not only protect user privacy, but also achieve better accuracy of privacy protection.

Funder

National Natural Science Foundation of China

Henan Key Research Project of Higher Education Institutions

Henan Key Laboratory of Network Cryptography Technology

Henan Province Key Research and Development Special Project

Henan Provincial Science and Technology Department

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Computer Networks and Communications,Hardware and Architecture,Signal Processing,Control and Systems Engineering

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