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A distributed framework for spatio-temporal analysis on large-scale camera networks

  • Georgia Institute of Technology
  • University of Stuttgart

Research output: Contribution to conferencePaperpeer-review

6 Scopus citations

Abstract

Cameras are becoming ubiquitous. Applications including video-based surveillance and emergency response exploit camera networks to detect anomalies in real time and reduce collateral damage. A well-known technique for detecting anomalies is spatio-temporal analysis - an inferencing technique employed by domain experts (e.g., vision researchers) to answer spatio-temporal queries. In this paper, we propose a distributed framework that facilitates the development and deployment of spatio-temporal analysis applications on large-scale camera networks and backend computing resources. We make the following contributions: (a) an investigation of the computation/communication costs associated with spatio-temporal analysis, (b) a programming framework designed for large-scale spatio-temporal analysis, and (c) performance evaluations for each step of the spatio-temporal analysis with realistic algorithms.

Original languageEnglish
Pages309-314
Number of pages6
DOIs
StatePublished - 2013
Event33rd IEEE International Conference on Distributed Computing Systems Workshops, ICDCSW 2013 - Philadelphia, PA, United States
Duration: Jul 8 2013Jul 11 2013

Conference

Conference33rd IEEE International Conference on Distributed Computing Systems Workshops, ICDCSW 2013
Country/TerritoryUnited States
CityPhiladelphia, PA
Period07/8/1307/11/13

Keywords

  • camera networks
  • distributed programming framework
  • resource management
  • runtime system
  • spatio-temporal analysis

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