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Weakly Supervised Temporal Action Localization Using Deep Metric Learning
[article]
2020
arXiv
pre-print
Temporal action localization is an important step towards video understanding. Most current action localization methods depend on untrimmed videos with full temporal annotations of action instances. However, it is expensive and time-consuming to annotate both action labels and temporal boundaries of videos. To this end, we propose a weakly supervised temporal action localization method that only requires video-level action instances as supervision during training. We propose a classification
arXiv:2001.07793v1
fatcat:qzhzxvtzkva5ziqxyfzgvg36pi