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Image, Video And Multimedia Systems Laboratory

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NATIONAL TECHNICAL UNIVERSITY OF ATHENS. Visual Descriptor Ontology ... NATIONAL TECHNICAL UNIVERSITY OF ATHENS. KAA Results ?xml version='1.0' encoding='UTF-8' ... – PowerPoint PPT presentation

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Title: Image, Video And Multimedia Systems Laboratory


1
  • Image, Video And Multimedia Systems Laboratory
  • Background
  • http//www.image.ntua.gr

2
Automatic Image Annotation
Input image
Automatic segmentation
Desired result
3
Image Annotator Tool
  • Tool forGround truth constructionSemi-automatic
    image annotation
  • Support ofAutomatic segmentationManual, user
    driven region mergingExport of segmentation
    masks and textual annotation

4
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
Knowledge-Assisted Analysis Tool
Developed in collaboration with CERTH-ITI
6
KAA Results
  • lt?xml version"1.0" encoding"UTF-8"?gt
  • ltKAAgt
  • ltSpatialDecomposition id"KaaMask"gt
  • ltRegiongt
  • ltRegionNumbergt0lt/RegionNumbergt
  • ltConceptgtSealt/Conceptgt
  • ltConfidencegt0.81172lt/Confidencegt
  • lt/Regiongt
  • ltRegiongt
  • ltRegionNumbergt1lt/RegionNumbergt
  • ltConceptgtPersonlt/Conceptgt
  • ltConfidencegt0.948059lt/Confidencegt
  • lt/Regiongt
  • ltRegiongt
  • ltRegionNumbergt2lt/RegionNumbergt
  • ltConceptgtSealt/Conceptgt
  • ltConfidencegt0.80658lt/Confidencegt
  • lt/Regiongt
  • ltRegiongt

7
Semantic Segmentation
  • 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

8
Sea is oversegmented
Semantic Segmentation
People have been incorrectly merged with the sand
Region is assigned to a fuzzy set of labels
rock/0.89,sand/0.46
RSST segmentation
Sea segments are merged correctly
Semantic RSST segmentation
9
Visual Attention Classification
  • Generate visual saliency maps
  • Detect foreground / background
  • Select most representative regions for
    classification, based on saliency

Lower Classification error
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