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BUILDING A MULTIMEDIA WEB
OBSERVATORY PLATFORM
Jonathon Hare
jsh2@ecs.soton.ac.uk
WHY MULTIMEDIA?
THE WEB IS MULTIMEDIA
MULTIMEDIA GIVES US A
MORE COMPLETE PICTURE OF
THE WEB, BUT ALSO A MORE
COMPLETE PICTURE OF
SOCIETY.
HOW CAN WE EXPLOIT
MULTIMEDIA DATA?
INTERLINKING CONTENT
THROUGH MM FEATURES
• Detection of near-duplicates using
MM analysis can interlink content
across languages, domains and
groups.
• Aggregating documents
about the same subject/event/
opinion
• Finding cases where media is
used in differing contexts is
also interesting.
• Exploring how different social
groups talk about the same
media
• Detection & recognition of people
• General object, logo, etc. detection & recognition
• Detection of locations
• Temporal detection of duplicates
MINING ENTITIES,TRENDS,
TOPICS AND EVENTS
• Facial analysis of visual data
• Course-grained automatic classification
(sentiment/privacy/attractiveness)
• Investigating Correlations between images and
opinions mined from text
UNDERSTANDING
MEANING OF
CONTENT
THE ARCOMEM APPROACH
•Intelligently harvest data from the web and social web
around specific ETOEs.
•Provide a scalable and extensible platform for analysis
taking into account all modalities of data.
•Expose the results of the analysis in the form of semantic
knowledge.
•Export the data in standardised formats for preservation
and exchange.

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Building a Multimedia Web Observatory Platform

  • 1. BUILDING A MULTIMEDIA WEB OBSERVATORY PLATFORM Jonathon Hare jsh2@ecs.soton.ac.uk
  • 3. THE WEB IS MULTIMEDIA
  • 4. MULTIMEDIA GIVES US A MORE COMPLETE PICTURE OF THE WEB, BUT ALSO A MORE COMPLETE PICTURE OF SOCIETY.
  • 5. HOW CAN WE EXPLOIT MULTIMEDIA DATA?
  • 6. INTERLINKING CONTENT THROUGH MM FEATURES • Detection of near-duplicates using MM analysis can interlink content across languages, domains and groups. • Aggregating documents about the same subject/event/ opinion • Finding cases where media is used in differing contexts is also interesting. • Exploring how different social groups talk about the same media
  • 7. • Detection & recognition of people • General object, logo, etc. detection & recognition • Detection of locations • Temporal detection of duplicates MINING ENTITIES,TRENDS, TOPICS AND EVENTS
  • 8. • Facial analysis of visual data • Course-grained automatic classification (sentiment/privacy/attractiveness) • Investigating Correlations between images and opinions mined from text UNDERSTANDING MEANING OF CONTENT
  • 10. •Intelligently harvest data from the web and social web around specific ETOEs. •Provide a scalable and extensible platform for analysis taking into account all modalities of data. •Expose the results of the analysis in the form of semantic knowledge. •Export the data in standardised formats for preservation and exchange.