Publication | Closed Access
Automated discovery of dependencies between logical components in document image understanding
13
Citations
5
References
2002
Year
Unknown Venue
Document Image UnderstandingMachine LearningEngineeringImage RetrievalImage DatabaseAutomated DiscoverySemanticsImage SearchText MiningNatural Language ProcessingLogical ComponentsImage AnalysisData ScienceInformation RetrievalPattern RecognitionText RecognitionComputational LinguisticsDocument UnderstandingDocument ClassificationLanguage StudiesSystem Wisdom++Visual ModelsMachine VisionKnowledge DiscoveryComputer ScienceImage SimilarityComputer VisionAutomated ReasoningDocument ImageDocument ProcessingContent-based Image Retrieval
Document image understanding denotes the recognition of semantically relevant components in the layout extracted from a document image. This recognition process is based on some visual models, whose manual specification can be a highly demanding task. In order to automatically acquire these models, we propose the application of machine learning techniques. Problems raised by possible dependencies between concepts to be learned are illustrated and solved with a computational strategy based on the separate-and-parallel-conquer search. The approach is tested on a set of real multi-page documents processed by the system WISDOM++. New results confirm the validity of the proposed strategy and show some limits of the learning system used in this work.
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