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FlierMeet: A Mobile Crowdsensing System for Cross-Space Public Information Reposting, Tagging, and Sharing

  • Bin Guo
  • , Huihui Chen
  • , Zhiwen Yu
  • , Xing Xie
  • , Shenlong Huangfu
  • , Daqing Zhang
  • Northwestern Polytechnical University
  • Microsoft Research Asia
  • Institut Mines-Télécom

Research output: Contribution to journalArticlepeer-review

137 Citations (Scopus)

Abstract

Community bulletin boards serve an important function for public information sharing in modern society. Posted fliers advertise services, events, and other announcements. However, fliers posted offline suffer from problems such as limited spatial-temporal coverage and inefficient search support. In recent years, with the development of sensor-enhanced mobile devices, mobile crowd sensing (MCS) has been used in a variety of application areas. This paper presents FlierMeet, a crowd- powered sensing system for cross-space public information reposting, tagging, and sharing. The tags learned are useful for flier sharing and preferred information retrieval and suggestion. Specifically, we utilize various contexts (e.g., spatio-temporal info, flier publishing/reposting behaviors, etc.) and textual features to group similar reposts and classify them into categories. We further identify a novel set of crowd-object interaction hints to predict the semantic tags of reposts. To evaluate our system, 38 participants were recruited and 2,035 reposts were captured during an eight-week period. Experiments on this dataset showed that our approach to flier grouping is effective and the proposed features are useful for flier category/semantic tagging.

Original languageEnglish
Article number6994876
Pages (from-to)2020-2033
Number of pages14
JournalIEEE Transactions on Mobile Computing
Volume14
Issue number10
DOIs
Publication statusPublished - 1 Oct 2015
Externally publishedYes

Keywords

  • Participatory sensing
  • cross-space reposting
  • data grouping and selection
  • interaction-based semantic tagging
  • urban sensing

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