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dc.creatorGkoulalas-Divanis, A.en
dc.creatorVerykios, V. S.en
dc.creatorEleftheriou, D.en
dc.date.accessioned2015-11-23T10:28:30Z
dc.date.available2015-11-23T10:28:30Z
dc.date.issued2009
dc.identifier10.1109/MDM.2009.17
dc.identifier.isbn9780769536507
dc.identifier.issn15516245
dc.identifier.urihttp://hdl.handle.net/11615/28008
dc.description.abstractThe widespread adoption of Location Based Services (LBSs) coupled with recent advances in location tracking technologies, pose serious concerns to user privacy. As a consequence, privacy preserving approaches have been proposed to protect the location information which is communicated during a request for an LBS. Most existing approaches are centralized as they rely on a trusted server to protect the real location of the user. Although the centralized approaches are commonplace, so far no attempt has been made to integrate them in a unified framework. Such an integration would provide the means for easily implementing and testing new techniques by offering ready-made vanilla system components and allow for both the experimental and analytical evaluation of the implemented techniques. In this paper we propose PLOT, an open-ended toolbox that allows the implementation and the evaluation of privacy-enhancing algorithms for LBSs. PLOT offers a variety of interesting features: (i) it supports both real and synthetic movement data, (ii) it relies on spatial DBMSs to efficiently handle movement data as well as the underlying model of user movement, (iii) it offers tools for mobile data preprocessing, movement reconstruction and segmentation, (iv) it allows the implementation of both network-based and free-terrain solutions to location privacy, (v) it provides the infrastructure for second-chance approaches when the main location privacy approach fails, (vi) it implements strategies for the identification of frequent patterns in user movement, and finally (vii) it offers an extended set of visualization tools that both provide insight on the workings of the implemented solutions and facilitate the qualitative and quantitative evaluation of their behavior. © 2009 IEEE.en
dc.source.urihttp://www.scopus.com/inward/record.url?eid=2-s2.0-70349486036&partnerID=40&md5=c8afe1334f3d194fd4e71790fbfe2708
dc.subjectAnalytical evaluationen
dc.subjectCentralized approachesen
dc.subjectFrequent patternsen
dc.subjectLocation informationen
dc.subjectLocation privacyen
dc.subjectLocation trackingen
dc.subjectLocation-Based Servicesen
dc.subjectMobile dataen
dc.subjectMovement reconstructionen
dc.subjectNetwork-baseden
dc.subjectPrivacy preservingen
dc.subjectQuantitative evaluationen
dc.subjectSystem componentsen
dc.subjectUnified frameworken
dc.subjectUser movementen
dc.subjectUser privacyen
dc.subjectVisualization toolsen
dc.subjectData privacyen
dc.subjectData visualizationen
dc.subjectMiddlewareen
dc.subjectWireless networksen
dc.subjectQuality controlen
dc.titlePLOT: Privacy in location based services: An open-ended toolboxen
dc.typeconferenceItemen


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