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Recod @ MediaEval 2014: 
Diverse Social Images Retrieval 
Rodrigo T. Calumby, Vinícius P. Santana, 
Felipe S. Cordeiro, Otávio A. B. Penatti, 
Lin T. Li, Giovani Chiachia, Ricardo da S. Torres 
o.penatti@samsung.com 
[rtcalumby, vpsantana, fscordeiro]@ecomp.uefs.br 
[lintzyli, chiachia, rtorres]@ic.unicamp.br 
UEFS 
Acknowledgments: UEFS/PROBIC, Samsung Research Institute Brazil, CNPq, and FAPESP (2013/11359-0).
PROPOSED APPROACH 
Filtering 
Geographic Face detection 
Diversification Re-ranking 
Visual 
input 
list 
Clustering 
output 
list Selection 
Credibility
input 
list 
output 
list 
Filtering 
Re-ranking 
Diversif 
ication 
Geo Filter 
Face Filter 
NumFacesFilter 
> 1 face → non-relevant 
(location: Christ the Redeemer, Rio de Janeiro) 
1-NN Classifier 
Features 
1) number of faces 
2) biggest face size 
3) smallest face size 
4) average face size 
5) total face size 
Test Image: 
Validation (devset) 
leave-one-location-out 
Runs (testset) 
target: full devset 
kNN 
10km radius 
limit from 
reference 
lat/long of the 
location 
(location: Iguazu Falls, Brazil/Argentina) 
FaceClassifierFilter
Filtering 
Re-ranking 
Diversif 
ication 
Visual Credibility 
CredScore: 
visualScore X faceProportion X tagSpecificity 
Location representatives: 
(location: Casa Batlló, Barcelona) 
Original Re-ranked 
1 
4√n+1 
RelScore (nth image): 
Finalcore: CredScore x RelScore 
Original Re-ranked
input 
list 
output 
list 
Filtering 
Re-ranking 
Diversif 
ication 
Clustering 
Selection 
- Descending cluster size 
- Most relevant item from 
each cluster 
(location: Arc de Triomphe, Paris) 
- kMedoids: 50 clusters 
- Initial medoids: rank offset positions 
Output list
RESULTS – OFFICIAL MEASURES 
Run Filtering Re-ranking Diversification P@20 CR@20 F1@20 
NumFacesFilter - kMedoids (BoVWsparse 
1 GeoFilter and 
max + 
HOG) 0.7130 0.4030 0.5077 
2 GeoFilter and 
NumFacesFilter - kMedoids (Cosine) 0.6976 0.4139 0.5133 
3 GeoFilter and 
NumFacesFilter 
Visual re-ranking (CM3x3 + 
HOG + BIC) 
kMedoids (BoVWsparse 
max + 
HOG + Cosine) 0.7016 0.4177 0.5168 
4 GeoFilter and 
NumFacesFilter 
Visual re-ranking (CM3x3 + 
HOG + BIC) and Credibility 
re-ranking 
kMedoids (CN3x3) 0.7598 0.4288 0.5423 
5 
GeoFilter and 
FaceClassifierFilt 
er 
Visual re-ranking (CM3x3 + 
HOG + BIC) and Credibility 
re-ranking 
kMedoids (CN3x3) 0.7407 0.4076 0.5206
CONCLUSIONS 
- Geographic and face-based filtering improved precision. 
- The simple NumFacesFilter outperformed the FaceClassifierFilter. 
- Visual and credibility re-ranking improved precision. 
- kMedoids outperfomed MMR on devset and was applied for the runs. 
- Inter and inner cluster sorting were effective for improving 
relevance.
Recod @ MediaEval 2014: 
Diverse Social Images Retrieval 
Thank you! 
Rodrigo T. Calumby, Vinícius P. Santana, Felipe S. Cordeiro, 
Otávio A. B. Penatti, Lin T. Li, Giovani Chiachia, Ricardo da S. Torres 
o.penatti@samsung.com 
[rtcalumby, vpsantana, fscordeiro]@ecomp.uefs.br 
[lintzyli, chiachia, rtorres]@ic.unicamp.br 
UEFS 
Acknowledgments: UEFS/PROBIC, Samsung Research Institute Brazil, CNPq, and FAPESP (2013/11359-0).

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Recod @ MediaEval 2014: Diverse Social Images Retrieval

  • 1. Recod @ MediaEval 2014: Diverse Social Images Retrieval Rodrigo T. Calumby, Vinícius P. Santana, Felipe S. Cordeiro, Otávio A. B. Penatti, Lin T. Li, Giovani Chiachia, Ricardo da S. Torres o.penatti@samsung.com [rtcalumby, vpsantana, fscordeiro]@ecomp.uefs.br [lintzyli, chiachia, rtorres]@ic.unicamp.br UEFS Acknowledgments: UEFS/PROBIC, Samsung Research Institute Brazil, CNPq, and FAPESP (2013/11359-0).
  • 2. PROPOSED APPROACH Filtering Geographic Face detection Diversification Re-ranking Visual input list Clustering output list Selection Credibility
  • 3. input list output list Filtering Re-ranking Diversif ication Geo Filter Face Filter NumFacesFilter > 1 face → non-relevant (location: Christ the Redeemer, Rio de Janeiro) 1-NN Classifier Features 1) number of faces 2) biggest face size 3) smallest face size 4) average face size 5) total face size Test Image: Validation (devset) leave-one-location-out Runs (testset) target: full devset kNN 10km radius limit from reference lat/long of the location (location: Iguazu Falls, Brazil/Argentina) FaceClassifierFilter
  • 4. Filtering Re-ranking Diversif ication Visual Credibility CredScore: visualScore X faceProportion X tagSpecificity Location representatives: (location: Casa Batlló, Barcelona) Original Re-ranked 1 4√n+1 RelScore (nth image): Finalcore: CredScore x RelScore Original Re-ranked
  • 5. input list output list Filtering Re-ranking Diversif ication Clustering Selection - Descending cluster size - Most relevant item from each cluster (location: Arc de Triomphe, Paris) - kMedoids: 50 clusters - Initial medoids: rank offset positions Output list
  • 6. RESULTS – OFFICIAL MEASURES Run Filtering Re-ranking Diversification P@20 CR@20 F1@20 NumFacesFilter - kMedoids (BoVWsparse 1 GeoFilter and max + HOG) 0.7130 0.4030 0.5077 2 GeoFilter and NumFacesFilter - kMedoids (Cosine) 0.6976 0.4139 0.5133 3 GeoFilter and NumFacesFilter Visual re-ranking (CM3x3 + HOG + BIC) kMedoids (BoVWsparse max + HOG + Cosine) 0.7016 0.4177 0.5168 4 GeoFilter and NumFacesFilter Visual re-ranking (CM3x3 + HOG + BIC) and Credibility re-ranking kMedoids (CN3x3) 0.7598 0.4288 0.5423 5 GeoFilter and FaceClassifierFilt er Visual re-ranking (CM3x3 + HOG + BIC) and Credibility re-ranking kMedoids (CN3x3) 0.7407 0.4076 0.5206
  • 7. CONCLUSIONS - Geographic and face-based filtering improved precision. - The simple NumFacesFilter outperformed the FaceClassifierFilter. - Visual and credibility re-ranking improved precision. - kMedoids outperfomed MMR on devset and was applied for the runs. - Inter and inner cluster sorting were effective for improving relevance.
  • 8. Recod @ MediaEval 2014: Diverse Social Images Retrieval Thank you! Rodrigo T. Calumby, Vinícius P. Santana, Felipe S. Cordeiro, Otávio A. B. Penatti, Lin T. Li, Giovani Chiachia, Ricardo da S. Torres o.penatti@samsung.com [rtcalumby, vpsantana, fscordeiro]@ecomp.uefs.br [lintzyli, chiachia, rtorres]@ic.unicamp.br UEFS Acknowledgments: UEFS/PROBIC, Samsung Research Institute Brazil, CNPq, and FAPESP (2013/11359-0).