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Diapositive 1

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60% of Internet image queries include only one concept ... Cat, monkey, elephant, tiger, lion, golden retriever, kittens, Chihuahua, snake. Expanded search ... – PowerPoint PPT presentation

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Title: Diapositive 1


1
A Conceptual Approach to Web Image Retrieval
Adrian Popescu Gregory Grefenstette CEA LIST,
France
OntoImage 2008 Marrakech, Morocco
Contacts adrian.popescu_at_telecom-bretagne.eu
gregory.grefenstette_at_cea.fr
2
Some facts
  • 60 of Internet image queries include only one
    concept
  • People are stupid or lazy?
  • What are they looking for?
  • Common nouns
  • Places
  • Other (famous) people
  • Products
  • Sexual content

3
Our Image Browsing Strategy
  • Introduce conceptual hierarchy into image search
    applications
  • Expand common words by more specific terms
  • Present results reflecting hierarchy
  • Dual browsing image or text query
  • Exploit conceptual hierarchy and image spidering
    to structure image base

4
Architecture of OLIVE
Olive picture retrieval framework employing a l
arge scale conceptual hierarchy
to provide a dual access to Web images
5
Adapting WordNet
  • Concept ranking
  • Based on Web counts
  • Relevance (C1) webCount(C1, parent)
  • Web counts and WordNet structure
  • Relevance (C1, C2) webCount(C1, parent)
    dist(C1,C2)/senses(C1)
  • Example for dog
  • (Web counts) pooch, pug, Newfoundland, basset
  • (WebWordNet) collie, basset, german shepherd,
    doberman
  • Query reformulation
  • Query concept representative leaf nodes

6
Knowledge for dog
7
First response page for dog - Google Image
8
First response page for dog - Olive
9
First response page for Doberman - Olive
10
Visual similarity search for image of Doberman
11
Evaluation Precision on first two pages
12
Precision over ten pages
13
Qualitative evaluation
  • Experiment setting
  • 10 users compared Olive and Google Image
  • Questionnaire about results structuring
    enriched interaction automatic reformulation
  • Positive reactions from the users to the new
    features introduced in Olive
  • The users also provided useful comments under the
    form of free text.

14
Conclusions
  • A semantic retrieval architecture can cover a
    significant part of Web picture queries.
  • Dual access to picture content, textual and
    visual
  • Simple but efficient solution to introduce CBIR
    in large scale architectures
  • With semantic structures, existing image indexes
    can be better used than in current applications
  • OLIVE outperforms Google Image, qualitatively and
    quantitatively
  • Future work
  • The extension of the hierarchy (e.g. using
    Wikipedia)?

15
A glimpse of the future
16
Advertising
  • Website
  • http//moromete.net
  • I am looking for work
  • Starting November 2008
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