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IMAGE TAG REFINEMENT ALONG THE ‘WHAT’ DIMENSION USING TAG CATEGORIZATION AND NEIGHBOR VOTING IEEE International Conference on Multimedia & Expo Singapore – July 19-23, 2010 Sihyoung Lee , Wesley De Neve, Yong Man Ro Image and Video Systems Lab Department of Electrical Engineering Korea Advanced Institute of Science and Technology (KAIST) email: ijiat@kaist.ac.kr
Outline ,[object Object],[object Object],[object Object],[object Object]
Outline ,[object Object],[object Object],[object Object],[object Object]
Introduction ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Question Can we  trust all image tags  in an image folksonomy?
Noisy Tags ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Problem Statement Need for identifying correct tags and noisy tags in order to boost the effectiveness of image retrieval
Outline ,[object Object],[object Object],[object Object],[object Object]
Neighbor Voting  (1/3) ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Neighbor Voting  (2/3) input image tag relevance learning [Figure adopted from X. Li  et al. ] bridge bicycle perfect MyWinners robyn fishing me bristol court 1 number Sydney bridge Australia architecture bridge tranquil bruges trees NikonE3100 Sydney bridge SuperShot clouds a5PhotosaDay ireland irlanda ingiro northireland irlandadelnord connemara Sweden bridge lake APlusPhot SuperAPlus image folksonomy retrieval of visual neighbors bridge 4 bicycle 0 perfect 0 MyWinners 0
Neighbor Voting  (3/3) ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Previous Tag Refinement Image folksonomy refined tags Retrieval of visual neighbors Voting Neighbor voting algorithm nikon, leaves, jw, east, clouds, coast, ground, rita, red, rain, newengland, pretty, yellow, summer, portrait, pink, macro, grass, flowers,  etc 

Proposed Tag Refinement Tag categorization WordNet refined tags along the  what  dimension Visual information-based refinement GPS-based refinement  where refined tags along the  where  dimension Time-based refinement  when refined tags along the  when  dimension Refinement using affective content analysis how refined tags along the  how  dimension who refined tags along the  who  dimension Face recognition-based refinement  what Neighbor voting algorithm Retrieval of visual neighbors Image folksonomy Scope of this paper: tag refinement along  the ‘what’ dimension Voting nikon, leaves, jw, east, clouds, coast, ground, rita, red, rain, newengland, pretty, yellow, summer, portrait, pink, macro, grass, flowers,  etc 

Tag Categorization ,[object Object],[object Object],[object Object],WordNet semantic noun categories Our categories animal, artifact, attribute, body, food, object, phenomenon, plant, shape, something, substance what location, space where person, group who time, event when act, cognition, communication, feeling, motive, possession, process, quantity, relation, state how
Outline ,[object Object],[object Object],[object Object],[object Object]
Experimental Setup ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Evaluation Metrics ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Results for Tag Categorization ,[object Object],46% 54% 22% 17% 12% 7% 5% 37% 46% 19% 17% 12% 6%
Objective Performance of Tag Refinement  (1/2) Before tag refinement After refinement without categorization with categorization NL 0.774 0.466 0.249 ,[object Object]
Objective Performance of Tag Refinement  (2/2) before tag refinement after tag refinement without tag categorization after tag refinement with tag categorization
Subjective Performance of Tag Refinement Image Tags Before tag refinement After tag refinement without categorization with categorization bc,  beach , british, cacade, canada, casio,  cloud ,  clouds , columbia, exf1, firstquality, forest, fpg, fun, hike, hiking,  island , juandefuca,  lagoon , lighthouse, metchosin,  mountain ,  mountains ,  ocean , picnic, play, range,  sand , state, trail, vancouver, victoria, washington,  water ,  wave ,  waves , witty, wittys clouds ,  beach ,  water ,  ocean ,  cloud ,  sand ,  mountains ,  island ,  wave ,  mountain , canada, washington, forest, trail,  waves , hiking clouds ,  beach ,  water ,  ocean ,  cloud ,  sand ,  mountains ,  island ,  mountain , trail
Objective Performance of Image Tag Recommendation Original folksonomy Refined folksonomy without categorization with categorization [email_address] 0.285 0.505 0.680 [email_address] 0.315 0.330 0.405 the  P@1 and P@5 values demonstrate that the proposed tag refinement technique improves the effectiveness of image tag recommendation for non-tagged images
Subjective Performance of Image Tag Recommendation Image Recommended tags Original folksonomy Refined folksonomy without categorization with categorization explore,  sky ,  blue , water, nature,  yellow ,  clouds , nikon, canon, 2007 sky , explore,  blue , nature,  yellow , water, canon,  clouds ,  white , geotagged sky ,  blue , nature,  yellow , water,  clouds ,  building ,  architecture , beach, snow explore,  nature ,  green ,  sky ,  blue , macro, water, nikon,  flower ,  clouds nature ,  green ,  sky ,  blue , explore, macro,  yellow , canon,  flower , water nature ,  green ,  sky ,  blue ,  yellow ,  flower , water,  clouds , bird,  grass sky , explore,  blue ,  clouds ,  nature , water, landscape, nikon, canon, geotagged sky ,  blue ,  clouds ,  nature , explore, water, landscape, hdr,  yellow , canon sky ,  blue ,  clouds ,  nature , water,  yellow , snow,  bird , lake, beach
Outline ,[object Object],[object Object],[object Object],[object Object]
Conclusions ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Thank you! Any questions?

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Image Tag Refinement Along the 'What' Dimension using Tag Categorization and Neighbor Voting

  • 1. IMAGE TAG REFINEMENT ALONG THE ‘WHAT’ DIMENSION USING TAG CATEGORIZATION AND NEIGHBOR VOTING IEEE International Conference on Multimedia & Expo Singapore – July 19-23, 2010 Sihyoung Lee , Wesley De Neve, Yong Man Ro Image and Video Systems Lab Department of Electrical Engineering Korea Advanced Institute of Science and Technology (KAIST) email: ijiat@kaist.ac.kr
  • 2.
  • 3.
  • 4.
  • 5. Question Can we trust all image tags in an image folksonomy?
  • 6.
  • 7. Problem Statement Need for identifying correct tags and noisy tags in order to boost the effectiveness of image retrieval
  • 8.
  • 9.
  • 10. Neighbor Voting (2/3) input image tag relevance learning [Figure adopted from X. Li et al. ] bridge bicycle perfect MyWinners robyn fishing me bristol court 1 number Sydney bridge Australia architecture bridge tranquil bruges trees NikonE3100 Sydney bridge SuperShot clouds a5PhotosaDay ireland irlanda ingiro northireland irlandadelnord connemara Sweden bridge lake APlusPhot SuperAPlus image folksonomy retrieval of visual neighbors bridge 4 bicycle 0 perfect 0 MyWinners 0
  • 11.
  • 12. Previous Tag Refinement Image folksonomy refined tags Retrieval of visual neighbors Voting Neighbor voting algorithm nikon, leaves, jw, east, clouds, coast, ground, rita, red, rain, newengland, pretty, yellow, summer, portrait, pink, macro, grass, flowers, etc 

  • 13. Proposed Tag Refinement Tag categorization WordNet refined tags along the what dimension Visual information-based refinement GPS-based refinement where refined tags along the where dimension Time-based refinement when refined tags along the when dimension Refinement using affective content analysis how refined tags along the how dimension who refined tags along the who dimension Face recognition-based refinement what Neighbor voting algorithm Retrieval of visual neighbors Image folksonomy Scope of this paper: tag refinement along the ‘what’ dimension Voting nikon, leaves, jw, east, clouds, coast, ground, rita, red, rain, newengland, pretty, yellow, summer, portrait, pink, macro, grass, flowers, etc 

  • 14.
  • 15.
  • 16.
  • 17.
  • 18.
  • 19.
  • 20. Objective Performance of Tag Refinement (2/2) before tag refinement after tag refinement without tag categorization after tag refinement with tag categorization
  • 21. Subjective Performance of Tag Refinement Image Tags Before tag refinement After tag refinement without categorization with categorization bc, beach , british, cacade, canada, casio, cloud , clouds , columbia, exf1, firstquality, forest, fpg, fun, hike, hiking, island , juandefuca, lagoon , lighthouse, metchosin, mountain , mountains , ocean , picnic, play, range, sand , state, trail, vancouver, victoria, washington, water , wave , waves , witty, wittys clouds , beach , water , ocean , cloud , sand , mountains , island , wave , mountain , canada, washington, forest, trail, waves , hiking clouds , beach , water , ocean , cloud , sand , mountains , island , mountain , trail
  • 22. Objective Performance of Image Tag Recommendation Original folksonomy Refined folksonomy without categorization with categorization [email_address] 0.285 0.505 0.680 [email_address] 0.315 0.330 0.405 the P@1 and P@5 values demonstrate that the proposed tag refinement technique improves the effectiveness of image tag recommendation for non-tagged images
  • 23. Subjective Performance of Image Tag Recommendation Image Recommended tags Original folksonomy Refined folksonomy without categorization with categorization explore, sky , blue , water, nature, yellow , clouds , nikon, canon, 2007 sky , explore, blue , nature, yellow , water, canon, clouds , white , geotagged sky , blue , nature, yellow , water, clouds , building , architecture , beach, snow explore, nature , green , sky , blue , macro, water, nikon, flower , clouds nature , green , sky , blue , explore, macro, yellow , canon, flower , water nature , green , sky , blue , yellow , flower , water, clouds , bird, grass sky , explore, blue , clouds , nature , water, landscape, nikon, canon, geotagged sky , blue , clouds , nature , explore, water, landscape, hdr, yellow , canon sky , blue , clouds , nature , water, yellow , snow, bird , lake, beach
  • 24.
  • 25.
  • 26. Thank you! Any questions?