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  4. CrowdPrivacy: Publish more useful data with less privacy exposure in crowdsourced location-based services
 
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CrowdPrivacy: Publish more useful data with less privacy exposure in crowdsourced location-based services

Journal
ACM Transactions on Privacy and Security
Journal Volume
23
Journal Issue
1
Date Issued
2020-02-01
Author(s)
FANG-JING WU  
Luo, Tie
DOI
10.1145/3375752
URI
https://scholars.lib.ntu.edu.tw/handle/123456789/636535
URL
https://api.elsevier.com/content/abstract/scopus_id/85079478212
Abstract
Location-based services (LBSs) typically crowdsource geo-tagged data from mobile users. Collecting more data will generally improve the utility for LBS providers; however, it also leads to more privacy exposure of users' mobility patterns. Although the tension between data utility and user privacy has been recognized, there lacks a solution that determines how much data to collect-in both spatial and temporal domains-is the “best” for both mobile users and the service provider. This article proposes a strategy toward making an optimal tradeoff such that a user submits data only if her mobility privacy will not be compromised and the data utility of the LBS provider will be sufficiently improved. To this end, we first define and formulate a concept called privacy exposure, which incorporates both the spatial distribution and the temporal transition of a user's activity points. Second, we define and quantify data utility in terms of spatial repetitions and temporal closeness among data based on an economic principle. Then, we propose a PRivacy-preserving and UTility-Enhancing Crowdsourcing (PRUTEC) algorithm to determine, on behalf of each mobile user, whether a newly sensed piece of data should be submitted to the LBS provider. Our simulation demonstrates that PRUTEC improves the data utility of the service provider with a much less amount of data to collect and reduces privacy exposure for mobile users while collecting useful data continuously.
Subjects
Crowdsourcing | Cyber-physical systems | Location-based services | Participatory sensing | Privacy preservation | Smart cities
Type
journal article

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