Spot On: Action Localization from Pointly-Supervised Proposals

Open Access
Authors
Publication date 2016
Host editors
  • B. Leibe
  • J. Matas
  • N. Sebe
  • M. Welling
Book title Computer Vision – ECCV 2016
Book subtitle 14th European Conference, Amsterdam, The Netherlands, October 11-14, 2016 : proceedings
ISBN
  • 9783319464534
ISBN (electronic)
  • 9783319464541
Series Lecture Notes in Computer Science
Event 14th European Conference on Computer Vision
Volume | Issue number 5
Pages (from-to) 437-453
Publisher Cham: Springer
Organisations
  • Faculty of Science (FNWI) - Informatics Institute (IVI)
Abstract
We strive for spatio-temporal localization of actions in videos. The state-of-the-art relies on action proposals at test time and selects the best one with a classifier trained on carefully annotated box annotations. Annotating action boxes in video is cumbersome, tedious, and error prone. Rather than annotating boxes, we propose to annotate actions in video with points on a sparse subset of frames only. We introduce an overlap measure between action proposals and points and incorporate them all into the objective of a non-convex Multiple Instance Learning optimization. Experimental evaluation on the UCF Sports and UCF 101 datasets shows that (i) spatio-temporal proposals can be used to train classifiers while retaining the localization performance, (ii) point annotations yield results comparable to box annotations while being significantly faster to annotate, (iii) with a minimum amount of supervision our approach is competitive to the state-of-the-art. Finally, we introduce spatio-temporal action annotations on the train and test videos of Hollywood2, resulting in Hollywood2Tubes, available at http://tinyurl.com/hollywood2tubes.
Document type Conference contribution
Note With electronic supplementary material
Language English
Published at https://doi.org/10.1007/978-3-319-46454-1_27
Published at https://ivi.fnwi.uva.nl/isis/publications/2016/MettesECCV2016
Downloads
MettesECCV2016 (Accepted author manuscript)
978-3-319-46454-1_27 (Final published version)
Spot-on_suppl1 (Other version)
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