Publication | Closed Access
Static and Moving Object Detection Using Flux Tensor with Split Gaussian Models
213
Citations
11
References
2014
Year
Unknown Venue
Object Detection SystemFeature DetectionMachine LearningEngineeringVideo ProcessingImage Sequence AnalysisSplit Gaussian ModelsImage AnalysisPattern RecognitionVision RecognitionMachine VisionObject DetectionComputer ScienceDeep LearningComputer VisionMotion DetectionObject RecognitionFlux TensorMotion Analysis
In this paper, we present a moving object detection system named Flux Tensor with Split Gaussian models (FTSG) that exploits the benefits of fusing a motion computation method based on spatio-temporal tensor formulation, a novel foreground and background modeling scheme, and a multi-cue appearance comparison. This hybrid system can handle challenges such as shadows, illumination changes, dynamic background, stopped and removed objects. Extensive testing performed on the CVPR 2014 Change Detection benchmark dataset shows that FTSG outperforms state-of-the-art methods.
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