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NATIONAL TECHNICAL UNIVERSITY OF ATHENS Image, Video And Multimedia Systems Laboratory Background

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Presentation on theme: "NATIONAL TECHNICAL UNIVERSITY OF ATHENS Image, Video And Multimedia Systems Laboratory Background"— Presentation transcript:

1 NATIONAL TECHNICAL UNIVERSITY OF ATHENS Image, Video And Multimedia Systems Laboratory Background http://www.image.ntua.gr

2 NATIONAL TECHNICAL UNIVERSITY OF ATHENS Automatic Image Annotation Input image Automatic segmentationDesired result

3 NATIONAL TECHNICAL UNIVERSITY OF ATHENS  Tool for: Ground truth construction Semi-automatic image annotation  Support of: Automatic segmentation Manual, user driven region merging Export of segmentation masks and textual annotation Image Annotator Tool

4 NATIONAL TECHNICAL UNIVERSITY OF ATHENS Visual Descriptor Ontology  MPEG-7(XML Schema) defines visual descriptors by specifying their components  In VDO (RDFS), descriptors are defined through relations with their components  Descriptors related to higher – level concepts through inference rules  Rules define spatio-temporal constraints

5 NATIONAL TECHNICAL UNIVERSITY OF ATHENS Knowledge- Assisted Analysis Tool Developed in collaboration with CERTH-ITI

6 NATIONAL TECHNICAL UNIVERSITY OF ATHENS KAA Results 0 Sea 0.81172 1 Person 0.948059 2 Sea 0.80658 3 Sand 0.885552 4 Sky 1 …

7 NATIONAL TECHNICAL UNIVERSITY OF ATHENS Approach:  Graph-based representation of images  Semantic vs Syntactic: regions are assigned fuzzy set of labels instead of low-level features  Modification of traditional segmentation algorithms to operate on labelled regions  Simultaneous image segmentation and region labeling Target:  Solve oversegmentation problems  Assign labels with confidence values to regions  Link labels with concepts existing in ontologies Semantic Segmentation

8 NATIONAL TECHNICAL UNIVERSITY OF ATHENS Sea is oversegmented People have been incorrectly merged with the sand RSST segmentation Semantic RSST segmentation Region is assigned to a fuzzy set of labels: {rock/0.89,sand/0.46} Sea segments are merged correctly Semantic Segmentation

9 NATIONAL TECHNICAL UNIVERSITY OF ATHENS Visual Attention & Classification  Generate visual saliency maps  Detect foreground / background  Select most representative regions for classification, based on saliency Lower Classification error OriginalSaliency Map Background Detection


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