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Image change detection algorithms: a systematic survey

IEEE Transactions on Image Processing · 2005 · Vol. 14(3) · pp. 294–307
Richard J. RadkeSrinivas AndraOmar Al-KofahiBadrinath Roysam

Abstract

Detecting regions of change in multiple images of the same scene taken at different times is of widespread interest due to a large number of applications in diverse disciplines, including remote sensing, surveillance, medical diagnosis and treatment, civil infrastructure, and underwater sensing. This paper presents a systematic survey of the common processing steps and core decision rules in modern change detection algorithms, including significance and hypothesis testing, predictive models, the shading model, and background modeling. We also discuss important preprocessing methods, approaches to enforcing the consistency of the change mask, and principles for evaluating and comparing the performance of change detection algorithms. It is hoped that our classification of algorithms into a relatively small number of categories will provide useful guidance to the algorithm designer.

Remote-Sensing Image ClassificationImage Retrieval and Classification TechniquesRemote Sensing in AgricultureChange detectionComputer sciencePreprocessorAlgorithmData miningArtificial intelligenceMachine learningImage processingStatistical classificationConsistency (knowledge bases)

MeSH terms

AlgorithmsAnimalsArtificial IntelligenceData CollectionHumansImage EnhancementImage Interpretation, Computer-AssistedModels, BiologicalNumerical Analysis, Computer-AssistedPattern Recognition, AutomatedSignal Processing, Computer-AssistedSubtraction TechniqueInformation Storage and RetrievalImaging, Three-Dimensional

Funding

  • National Science Foundation
  • American Society for Engineering Education
  • Agence Nationale pour la Gestion des Déchets Radioactifs
Citations
1,849
FWCI
143.34
field-weighted impact
References
137
Percentile
100%
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Citations per year
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