Publication | Closed Access
Hybrid object recognition in image sequences
15
Citations
3
References
2002
Year
Unknown Venue
Image AnalysisMachine VisionMachine LearningHybrid Object RecognitionPattern RecognitionObject DetectionObject RecognitionHybrid ApproachNext ImageEngineeringStatistical Relational LearningComputer ScienceVideo UnderstandingDeep LearningHidden Markov ModelsVision RecognitionComputer VisionImage Sequence Analysis
We present a hybrid approach attaching probabilistic formalisms, as artificial neural networks or hidden Markov models, to concepts of a semantic network for a robust and efficient detection of objects. Additionally, an efficient processing strategy for image sequences is outlined which propagates the structural results of the semantic network as an expectation for the next image. This method allows one to produce linked results over time supporting the recognition of events and actions.
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